WO2006034280A2 - Method for synthesis of colloidal nanoparticles - Google Patents

Method for synthesis of colloidal nanoparticles Download PDF

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Publication number
WO2006034280A2
WO2006034280A2 PCT/US2005/033681 US2005033681W WO2006034280A2 WO 2006034280 A2 WO2006034280 A2 WO 2006034280A2 US 2005033681 W US2005033681 W US 2005033681W WO 2006034280 A2 WO2006034280 A2 WO 2006034280A2
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Prior art keywords
nanoparticles
group
elements
iii
heating
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PCT/US2005/033681
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French (fr)
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WO2006034280A8 (en
WO2006034280A3 (en
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Geoffrey F. Strouse
Jeffrey A. Gerbec
Donny Magana
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The Regents Of The University Of California
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Priority claimed from US10/945,053 external-priority patent/US7615169B2/en
Application filed by The Regents Of The University Of California filed Critical The Regents Of The University Of California
Priority to JP2007532617A priority Critical patent/JP2008515746A/en
Priority to US11/663,327 priority patent/US7927516B2/en
Publication of WO2006034280A2 publication Critical patent/WO2006034280A2/en
Publication of WO2006034280A8 publication Critical patent/WO2006034280A8/en
Publication of WO2006034280A3 publication Critical patent/WO2006034280A3/en

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Definitions

  • the invention is related to chemical synthesis of nanoparticles, and more particularly, to the large-scale, safe, convenient, reproducible, energy-conserving synthesis of highly-dispersive inorganic nanoparticles with narrow size distribution.
  • the invention also involves highly luminescent III-V semiconductor nanoparticles with the merits described above.
  • the general synthetic approach for preparation of colloidal semiconductor nanoparticles employs a bulky reaction flask under continuous Ar flow with a heating mantle operating in excess of 240°C.
  • the reaction is initiated by rapid injection of the precursors, which are the source materials for the nanoparticles, at high temperatures and growth is controlled by the addition of a strongly coordinating ligand to control kinetics.
  • domestic microwave ovens have been used to synthesize nanoparticles.
  • the present invention describes methods of chemical synthesis of nanoparticles, such as quantum dots, comprising a high temperature ramp process, warranting large-scale, safe, convenient, reproducible, and energy-efficient production.
  • inorganic nanoparticles are synthesized by a scheme that comprises heating of the reaction system. It has been found that the above mentioned limitation can be overcome by including a heating process with high ramping rate. Hence, the critical issues that distinguish the present invention are:
  • FIG. 1 is a graph that illustrates the absorption and photoluminescence for CdSe for a series of reactions containing the ionic liquid l-hexyl-3- methylimidazolium chloride showing the formation rate dependence on applied power;
  • FIG. 2 is a graph that illustrates the absorption and photoluminescence for 4.5 nm and 5.5 nm CdSe
  • FIG. 3 is a graph that illustrates the absorption and photoluminescence for 4.6 nm CdSe;
  • FIGS. 4A and 4B are graphs that illustrate the absorption and photoluminescence of InGaP nanocrystals synthesized with hexadecene (HDE) and octadecene as the non-coordinating solvents;
  • FIG. 5 is a graph that illustrates the absorption and photoluminescence of
  • FIG. 6 is a flowchart that illustrates the processing steps used in the preferred embodiment of the present invention.
  • FIG. 7 is an illustration of the processing steps used in the preferred embodiment of the present invention.
  • nanoparticles are synthesized by heating the reaction system from room temperature to elevated temperatures.
  • the reaction system herein is a closed system that consists of materials that are necessary for the synthetic reaction. Each of these materials will hereafter be called a constituent element.
  • the sole constituent element is the precursor.
  • the constituent elements are solvent and precursor.
  • the solvent can be a mixture of plural solvents, and also the precursor can be a mixture of plural precursors. These elements can either be dispersed homogeneously or inhomogeneously.
  • the constituent elements of the reaction system are mixed at or near room temperature and heated for nanoparticle synthesis.
  • near room temperature is below 100°C.
  • the temperature of the reaction system is typically monitored by devices such as thermometer, pyrometer, or thermocouples.
  • the reaction described in the present invention comprise one or more of each of the (1) heating at a high heating rate, (2) stabilization at elevated temperature, and (3) cooling at a high cooling rate.
  • heating of the reaction system is performed by microwave irradiation.
  • the heating of the reaction system can either be achieved by sole use of microwave or with the aid of other heat sources such as oil-bath, mantle-heater, or burners.
  • the frequency of the microwave is typically 2.45 GHz but not limited. Use of focused microwave is preferred over unfocused, and single-mode is preferred over multimode for efficient heating.
  • Ramping the temperature of the reaction system up is done solely by microwave irradiation or microwave irradiation with the use of additional heat sources, during which the heating rate can be controlled by the input power of the microwave by a continuous or pulsed power supply.
  • the average heating rate during each process of the synthesis is defined as:
  • the synthetic scheme described in the present invention comprises one or more stages of high heating rate.
  • high heating rate refers to a rate of 30°C/min or higher, more preferably 32°C/min or higher, most favorably 34°C/min or higher.
  • average heating rate is below 30°C/min, synthesis may result in nanoparticulate materials with unfavorable properties such as lower dispersibility or wider size distribution.
  • stable temperature refers to processes in which the temperature change is 5°C/min or less.
  • Cool-down of the reaction system can be achieved by removing heat from the system by standard means such as air, water, ice, oil or cryogenic gas. Microwave irradiation with or without other heat sources can be used to control this cool-down process.
  • the average cooling rate of each cool-down process is defined as:
  • the synthetic scheme described in the present invention comprises one or more stages of high cooling rate.
  • high cooling rate refers to a rate of 8O 0 C /min or higher, more preferably 85°C/min or higher, most favorably 90°C/min or higher.
  • this high rate cooling process may be referred to as quenching.
  • the simplest embodiment of the present invention for synthesizing nanoparticles comprise of three stages that are high-rate heating, temperature stabilization, and high-rate cooling.
  • additives can be intentionally introduced to the system as a constituent element. In general, there is no limitation to the nature of such additives, and can be either organic or inorganic materials.
  • the additives can either be dispersed homogeneously or inhomogeneously in the reaction system. Moreover, the additives can be present in the reaction system from the beginning of the process or can be introduced during the course of the reaction. Examples of such additives are: graphite, silicon carbide, glycols, ionic liquids, tetrabutylammonium bromide, mono and dialkyl glycol ethers and cholesterols. Furthermore, for synthesizing the same or different nanoparticles, in addition to the precursors that exist in the reaction system, one may further introduce the same or different precursors during the course of reaction.
  • the main constituent elements of the reaction system comprises one or more constituent elements.
  • the main constituent element is the element with the largest molar equivalent.
  • the dielectric constant of the main constituent element is 20 or less, preferably 18 or less, more preferably 16 or less, and most preferably 14 or less. If the dielectric constant is over 20, it may result in loss of stability of the precursors in the system due to the exceedingly high polarity of the main constituent element. Additives can be introduced into the system before or during the course of reaction as long as their amounts are less than the main constituent element in molar equivalent.
  • the nanoparticles synthesized by the method described in the present invention comprise mainly inorganic materials, and their diameters are on the order of nanometers (nm).
  • the main crystal may be single crystal, polycrystal, alloys with or without phase separation due to stoichiometric variations, or core-shell structures that will be described later.
  • the average diameter of such crystals are 0.5-1 OOnm, preferably l ⁇ 20nm in order to warrant dispersibility, more preferably 2 ⁇ 12nm, most preferably 2-1 Onm.
  • Such diameters can be determined through characterization by transmission electron microscopy (TEM).
  • the micrographs cannot be obtained with sufficient contrast to make such determination of the diameter, for instance when the constituent atoms are those of low atomic numbers, techniques such as matrix assisted laser desorption ionization spectroscopy, atomic force microscopy (AFM), or for colloidal solutions, dynamic light scattering or neutron scattering can often be used instead.
  • the standard deviation is ⁇ 20%, preferably ⁇ 15%, more preferably ⁇ 10%, and most preferably ⁇ 5%.
  • the nanoparticles will often not exhibit their desired physical and chemical properties to their best performance.
  • the crystals that form the main body of the nanoparticles of the present invention can be the so-called core-shell structure in which the crystals comprise inner-core and outer-shell for modification of their physical and chemical properties.
  • Such shells are preferably metal, semiconductor, or insulator.
  • III-V compound semiconductors such as BN, BAs, or GaN
  • II- VI compound semiconductors such as ZnO, ZnS, ZnSe, CdS
  • compounds of Group 12 and Group 16 elements such as MgS, or MgSe.
  • minute amounts of additives can be intentionally doped for modification of the physical and chemical properties of the nanoparticles.
  • doping materials are Al, Mn, Cu, Zn, Ag, Cl, Ce, Eu, Tb, Er, or Tm.
  • Organic compounds present at the nanoparticle surface The nanoparticles synthesized by the method described in the present invention can have organic compounds attached to their surface.
  • the attachment of organic compounds to the surface is defined as the state in which the organic compound is chemically bonded to the surface. While there is no limitation in the form of bonding between the organic compound and the nanoparticle surface, examples are coordination bond, covalent bond, relatively strong bonds such as ionic bond, or through relatively weak interaction such as van der Waals force, hydrogen bond, hydrophobic-hydrophobic interaction, or entanglement of molecular chains.
  • the organic compounds can be a single species or a mixture of two or more.
  • organic compounds consist of the following coordinating functional groups that form bonds to the nanoparticle surface.
  • coordinating functional groups that comprise Group 15 or Group 16 elements constitute the above mentioned organic compounds.
  • functional groups are, primary amines, secondary amines, tertiary amines, radicals containing nitrogen multiple bonds, such as nitryl, or isocyanate, nitrogen containing radicals such as nitric aromatics, such as pyridine or triazine, functional groups containing Group 15 element such as phosphorus containing radicals, such as primary phosphine, secondary phosphine, tertiary phosphine, primary phosphine oxide, secondary phosphine oxide, tertiary phosphine oxide, primary phosphine selenide, secondary phosphine selenide, tertiary phosphine selenide, or phosphonic acid, oxygen containing radicals, such as hydroxyl, ether,
  • functional groups containing nitrogen such as pyridine rings
  • functional groups containing Group 15 elements such as phosphorus, such as primary amine, tertiary phosphine, tertiary phosphine oxide, tertiary phosphine selenide, or phosphonic acid
  • functional groups containing oxygen such as hydroxyl, ether, or carboxyl
  • functional groups containing Group 16 elements such as sulfur, such as thiol or methylsulfide, are used preferably.
  • trialkylphosphines trialkylphosphine oxides, alkane sulfonic acids, alkane phosphonic acids, alkyl amines, dialkylsulfoxides, dialkylether, and alkylcarboxyl acids are such examples.
  • the amount of organic compounds at the nanoparticle surface depends on the kind of nanoparticles and their surface area, such as their size, after proper separation, among the total weight of the nanoparticles and the organic compounds, is typically 1 to 90% of the weight, and for chemical stability and in order to disperse them into organic matrices such as solvents or resin binders that are practically important preferably 5 ⁇ 80%, more preferably, 10-70%, and most preferably 15-60%.
  • organic composition can be determined, for example, by the various elemental analyses or thermogravimetric analysis (TGA).
  • TGA thermogravimetric analysis
  • information regarding the chemical species and environment can be obtained by infrared (IR) spectroscopy or nuclear magnetic resonance (NMR).
  • nanoparticles synthesize by the method described in the present invention are semiconductor, cationic materials that can be chosen from elements in Group 2-15 and anionic materials that can be chosen from elements in Group 15-17 can be used as precursors. When more than one material is used, they may be mixed prior to the synthetic reaction or may be separately introduced into the reaction system.
  • Examples of the precursors for semiconductors that contain cationic elements are, dialkylated compounds of Group 2 elements, such as diethyl magnesium, or di-n- butyl magnesium; alkyl halides of Group 2 elements, such as methyl magnesium chloride, methyl magnesium bromide, methyl magnesium iodide, ethynyl magnesium chloride; dihalides, such as magnesium iodide; halides of Group 4 elements, such as titanium (IV) tetrachloride, titanium (IV) tetrabromide, or titanium (IV) tetraiodide; halides of Group 5 elements, such as vanadium (II) dichloride, vanadium (FV) tetrachloride, vanadium (II) dibromide, vanadium (IV) tetrabromide, vanadium (II) diiodide, vanadium (IV) tetraiodide, tantalum (V) pentachloride, tant
  • Group 14 elements such as germanium (IV) tetrachloride, germanium (IV) tetrabromide, germanium (IV) tetraiodide, tin (II) dichloride, tin (IV) tetrachloride, tin (II) dibromide, tin (IV) tetrabromide, tin (II) diiodide, tin (IV) diiodide, tin (IV) dichloride diiodide, tin (IV) tetraiodide, lead (II) dichloride, lead (II) dibromide, and lead (II) diiodide; or hydrides and/or alkylated compounds of Group 14 elements, such as diphenyl silane, can be used as precursors.
  • Group 14 elements such as germanium (IV) tetrachloride, germanium (IV) tetrabromide, germanium (IV)
  • anionic compounds that can be used as precursors for semiconductors are, elements of Groups 15-17, such as N, P, As, Sb, Bi, O, S, Se, Te, F, Cl, Br, and I; hydrides of Group 15 elements, such as ammonia, phosphine (PH 3 ), arsine (AsH 3 ), and stibine (SbH 3 ); silylated compounds of elements of Group 15 of the periodic table, such as tris(trimethylsilyl) amine, tris(trimethylsilyl) phosphine, and tris(trimethylsilyl) arsine; hydrides of Group 16 elements, such as hydrogen sulfide, hydrogen selenide, and hydrogen telluride; silylated compounds of Group 16 elements, such as bis(trimethylsilyl) sulfide and bis(trimethylsilyl) selenide, alkaline metal salts of Group 16 elements, such as sodium sulfide and sodium selenide; trialkylphosphine
  • the preferred materials are, elemental materials in Groups 15-17, such as phosphorus, arsenic, antimony, bismuth, sulfur, selenium, tellurium, and iodine; silylated compounds of Group 15 elements, such as tris(trimethylsilyl) phospine and tri(trimethylsilyl) arsine; hydrides of Group 16 elements, such as hydrogen sulfide, hydrogen selenide and hydrogen telluride; silylated compounds of Group 16 elements, such as bis(trimethylsilyl) sulfide and bis(trimethylsilyl) selenide; alkaline metal salts of Group 16 elements, such as sodium sulfide and sodium selenide; trialkylphosphine chalcogenides such as, tributylphosphine sulfide, trihexylphosphine sulfide, trioctylphosphine sulfide
  • more preferably used materials are, elemental materials in Groups 15 and 16, such as phosphorus, arsenic, antimony, sulfur, and selenium; silylated compounds of Group 15 elements, such as tris(trimethylsilyl) phospine and tri(trimethylsilyl) arsine; silylated compounds of Group 16 elements, such as bis(trimethylsilyl) sulfide and bis(trimethylsilyl) selenide; alkaline metal salts of Group 16 elements, such as sodium sulfide and sodium selenide; trialkylphosphine chalcogenides such as, tributylphosphine sulfide, trioctylphosphine sulfide, tributylphosphine selenide, and trioctylphosphine selenide; etc.
  • elemental materials in Groups 15 and 16 such as phosphorus, arsenic, antimony, sulfur, and selenium
  • Examples of precursors for metal nanoparticles for group 4 through 13 including Au, Ag, Fe, Ni, Co, Pt, Pd, Cu, Hg, In, NiPt, FePt, FeCo are: Gold: auric acid, chlorocarbonyl gold (I, and gold (I) chloride; Silver: silver (I) acetate, silver (I) nitrate, silver (I) chloride, silver (I) bromide, silver (I) iodide, and silver sulfate; Iron (either as II or III oxidation state): iron chloride, iron bromide, iron iodide, iron (0) carbonyl, iron acetate, iron acetyl acetonate, iron hexapyridine, iron hexamine, iron sterate, iron palmitate, iron sulfonate, iron nitrate, iron dithiocarbamate, iron dodecylsulfate, and iron tetrafluroborate; Nickel: nickel (II)
  • Cobalt cobalt (II) nitrate, cobalt (II) chloride, cobalt (II) bromide, cobalt (II) iodide, cobalt (II) carbonyl, cobalt (II) acetate, cobalt (II) acetyl acetonate, cobalt (II) acetyl acetonate cobalt (II) hexapyridine, cobalt (II) hexamine, cobalt (II) sterate, cobalt (III) palmitate, cobalt (II) sulfonate, cobalt (II) nitrate, cobalt (II) dithiocarbamate, cobalt (II) dodecylsulfate, and cobalt (II) tetrafluroborate; Platinum: platinum (II) nitrate, platinum (II) chloride, platinum (II) bromide,
  • the solvent effect for nanoparticle formation under dielectric heating is twofold: (1) it provides the matrix for which the reactants form products; and (2) they have the ability to absorb microwaves to intrinsically heat the reaction matrix.
  • the matrix effect can be noncoordinating or coordinating in nature.
  • Noncoordinating implies that the solvent does not form bonds to the precursor molecules or intermediate complexes during nanoparticle formation (it usually does not have functional groups).
  • Coordinating implies the solvent forms bonds to the precursor molecules and intermediates during nanoparticle formation.
  • Noncoordinating solvents used for nanoparticle formation usually consist of long chain, high boiling alkanes and alkenes such as hexadecane, octadecane, eicosane, 1-hexadecene, 1-octadecene and 1-eicosene.
  • Typical coordinating solvents consist of long chain (backbone of 6 to 20 carbons) alkyl amines (primary, secondary and tertiary), carboxylic acids, sulfonic acids phosphonic acids, phosphines and phosphine oxides.
  • the ability for a solvent to absorb microwaves is highly dependant on its dipole moment.
  • the dipole moment is defined as the product of the distance between two charges and the magnitude of the charge; hence, when a coordinating solvent is used as the solvent, it has a higher propencity of heating the bulk solution faster than a noncoordinating solvent that has a lower dipole moment by definition.
  • trioctylphosphineoxide 760°C/min
  • 1- aminohexadecane (30°C/min)
  • trioctylphosphineoxide converts electric energy to heat more efficiently. Comparing these to the heating rate of tetradecene (12°C/min) shows that the choice of solvents has a substantial influence on the rate at which the heat is transferred to the bulk solution.
  • solvent dielectric heating rates for nanoparticle synthesis will depend on several factors: the dielectric constant, the volume of solvent, and its boiling point.
  • the heating rates are slow for 5 ml of solvent at 300 W of incident power.
  • Ionic liquids translate very well to microwave-assisted formation of nanoparticles.
  • the effect of the ionic liquid to rapidly heat the bulk solution can be traced back to their selective ability to couple with the microwaves and efficiently convert electromagnetic energy into heat.
  • the effect of the higher heating rate in the presence of the ionic liquids increases the microscopic reaction temperatures at the forming nanoparticles.
  • microwave power can overcome kinetic barriers
  • the addition of ionic liquids overcomes thermodynamic barriers in the reaction. This is seen in FIG. 1 to be critical for overcoming activation barriers during the growth phase for the II- VI materials.
  • ILs can be used as unique passivants for nanoparticles. Appropriate selection can be utilized for all nanomateial compositions described herein.
  • the organic synthetic literature has shown that the use of ionic liquids can be used to aid heating of non-polar solvents such as hexanes, toluene and benzene.
  • non-polar solvents such as hexanes, toluene and benzene.
  • the high dielectric heating ability of ionic liquids at low concentrations compared to the solvent increases the microscopic temperature of the solution. It can therefore be imagined that by choosing a cation/anion pair that will not coordinate to the nanoparticles intermediates or the surface of growing nanoparticles, can aid as spectating microscopic heat sources.
  • Dielectric heating of nonpolar molecules is not only common to inorganic materials synthesis, but it is a common theme in organic synthetic chemistry. Heating large volumes of benzene, toluene or hexane for industrialization of pharmaceuticals has generated research for heating non-polar matrices. The ability of ionic liquids to convert electromagnetic energy to heat has led to growing research on the discovery of new ionic liquids and their structure in solution. A series of available ILs can be found in existing compendiums of organic compounds.
  • ionic liquids composed of the cation families: imidazolium, phosphonium, pyridinium, ammonium, sulfonium, piciolinium, thiazolium, oxazolium, pyrazolium, selenolium, teluronium, and their family of substituted species are utilized to control the reaction.
  • the choice of the IL is dependent on the desire to apply microscopic reaction control at the nanoparticle surface (passivation) or at the constituent and/or growing nanoparticle reactivity's (microscopic heating). Lewis acidity and bascity which are involved in constituent reactivity and surface passivation of a growing nanoparticle is tunable by counterion selction.
  • a strong Lewis base increases passivant-like behavior, while a sterically hindered, i.e., tetra- alkyl ammonium salt, increases microscopic temperatures.
  • the choice of the counterion can be as simple as a halide or slightly more sophisticated like long chain derivatized sulfates or phosphates.
  • the use of a simple ionic liquid l-hexyl-3-methyimidazolium chloride is shown to greatly enhance the heating rate of hexadecylamine and the formation rate of CdSe nanoparticles. It does not work for the III- V class, namely InP.
  • the heating rate for pure alkyl amine solvents like 1-aminooctane, 1- aminododecane, and 1-aminohexadecane are comparable to non-polar alkanes due to the similar dielectric constants.
  • the heating rate of the solution increases dramatically due to the large microwave cross section for ionic liquids.
  • the effect of the ionic liquid to rapidly heat the bulk solution can be traced back to their selective ability to couple with the microwaves and efficiently convert electromagnetic energy into heat.
  • the present invention also provides highly luminescent III-V semiconductor nanoparticles and the method of preparing thereof.
  • III-V semiconductor nanoparticles it has been reported that the quantum efficiency of III-V semiconductor nanoparticles is 36% at a maximum even after treatment of fluorine compounds [26]. As a result, there is a strong interest on highly luminescent III-V semiconductor nanoparticles and the preparation method.
  • the nanoparticles disclosed herein are composed of a combination of group III metals (or group 13 elements, for example, Al, Ga, In) and group V elements (or group 15 elements, for example, N, P, As, Sb) and exhibit photoluminescence quantum efficiency of 40% or more.
  • group III metals or group 13 elements, for example, Al, Ga, In
  • group V elements or group 15 elements, for example, N, P, As, Sb
  • the nanoparticles disclosed herein are composed of more than 2 kinds of group III metals and one kind of group V elements and exhibit photoluminescence quantum efficiency of 40% or more.
  • the composition of the III-V semiconductor nanoparticles disclosed herein is described as In (1-x )Ga x P, and exhibit photoluminescence quantum efficiency of 40% or more.
  • the range of x is 0 ⁇ x ⁇ 0.2, preferably 0.01 ⁇ x ⁇ 0.15, and more preferably 0.02 ⁇ x ⁇ 0.10 for higher quantum efficiency.
  • the quantum efficiency described above is preferably 45% or more, and more preferably 50% or more. From a practical point of view, the lower the quantum efficiency is, the more excitation light intensity is needed to obtain enough emission light intensity from the nanoparticles.
  • the preferable average diameter and the size distribution of the nanoparticles stated in this section are the same as those described in Section 5.
  • the nanoparticles stated in this section are prepared according to the methods disclosed in this invention. 15. Etching of Nanoparticles and Estimation of Quantum Efficiency of Nanoparticles.
  • etching with fluoride compound shell formation for as-prepared nanoparticles described in Section 7, nanoparticle synthesis with microwave heating, nanoparticle surface capping with a certain type of organic compounds and so on.
  • Etching with fluoride compounds is commonly used to enhance the quantum efficiency of III- V semiconductor nanoparticles.
  • the etching is carried out by adding a solution that contains fluoride ions into a solution that contains nanoparticles under stirring with irradiation of UV/Vis light as described in the literature [26]. This process is also called photo-chemical etching. After adding fluoride ion solution into the nanoparticle solution, the quantum efficiency enhances as a function of time.
  • Fluorine compounds are exemplified as HF, NH 4 F, (CH 3 ⁇ NF, (C 4 Hg) 4 NF and so on.
  • / (sample) and /' (reference) are integrated emission peak areas
  • a (sample) and A ' (reference) are the absorbances at the excitation wavelength
  • n (sample) and n ' (reference) are the refractive indices of the solvents
  • ⁇ e ' m is the quantum efficiency of Rhodamine 6G (0.95).
  • Microwave assisted synthesis setup a. DISCOVER system, CEM Corporation, NC, U.S.A. b. MILESTONE ETHOS system (continuous and pulsed power supply), Milestone Corporation, Monroe, CT, U.S.A.
  • the duration of nanoparticle reactions have been optimized to 15 minutes at a maximum temperature of 280°C. It is shown that under the influence of microwave radiation, the crystallinity becomes dependant on the power of the radiation in concert with the temperature of the reaction.
  • the microwave reactor allows the precursors to be prepared at or near room temperature (RT) and loaded into a reaction vessel prior to its introduction into an RT chamber of the microwave reactor. The reaction vessel is then heated to temperatures between 200°C and 300°C with active cooling.
  • the microwave reactor operates at 2.45 GHz and can be adapted to a continuous flow or autosampler system. Incorporation of integrated absorption and fluorescent detectors allow the reaction stream to be continuously monitored for applications where high throughput, high volume preparation of colloidal semiconductor nanoparticles is desired.
  • the reactants are mixed in a high-pressure reaction vessel and placed in the RT chamber of the microwave reactor.
  • the reaction is controlled by a predetermined program that controls and monitors reaction time, temperature, pressure, and microwave power (wattage) in real time. These reaction parameters control material size, purity, crystallinity, and dispersity.
  • the synthetic protocol allows reproducible production of materials.
  • the isolation and storage of the materials can be done directly inside the high-pressure reaction vessel, thereby eliminating the step of material transfer that potentially exposes the materials to contaminants such as oxygen and water.
  • the Teflon liner in the chamber of the microwave reactor was re-designed from typical commercial specifications in order to tolerate high temperatures for extended periods of time.
  • the reaction vessel comprises a 5 ml vial with a high-pressure aluminum crimp top with Teflon septa. All glassware was dried prior to use. All reagents were manipulated by standard airless techniques. In a typical large scale reaction (5 ml or greater), the reactants are placed in a standard round bottom flask (Kirmax, Pyrex or Chemglass) and placed in a RT chamber and irradiated with continuous or pulsed power with dual magnetrons until the desired temperature is reached.
  • Example 1 Preparation of CdSe from a single source precursor
  • HDA high pressure crimp cap
  • 4 ml of molten, degassed HDA at approximately 70°C.
  • the reaction vessel was placed in the chamber of the microwave reactor and irradiated with 300 Watts of power until it reached 230°C, at which time the power was decreased to 230 Watts. This power and temperature was held constant for 60 minutes. At 60 minutes, the power was turned off and the latent heat of the reaction vessel was quickly removed by passing compressed air across it. This produced monodisperse 4.5 nm to 5.5 ran CdSe nanoparticles.
  • the CdSe was prepared using the single source precursor Li 4 [CdioSe 4 (SPh)i 6 ] 2 .
  • a stock solution of the precursor cluster was prepared by adding 635 mg Of Li 4 [Cd 10 Se 4 (SPh) 16 ] and 0.0448g of l-hexyl-3-methylimidazolium chloride to 45g of degassed 1-aminohexadecane at 90 0 C.
  • the solution was degassed under Ar, and 5 ml aliquots were injected into the microwave reaction vials prior to the reaction.
  • a series of reaction were performed in which the applied power was increased from 160 to 400W keeping the reaction time at 3 minutes and the temperature fixed at 210 0 C by active cooling.
  • dielectric heating An important characteristic of dielectric heating is that microscopic instantaneous temperatures can be reached with small amounts of ionic liquid. It is clear from FIG. 1 that the onset of the first exciton redshifts with increasing power. That is, the CdSe nanoparticles in the microwave can be forced to grow by increasing the microscopic temperature of the reaction. This is achieved by the addition of the ionic liquid to the reaction mixture. When the IL is present in the solution in a 1.1 mol ratio of IL to the inorganic cluster the heating rate increases from 3°C/s to 12°C/s.
  • Example 3 Preparation of CdSe from CdNO3 and TOP : Se.
  • Stock solutions of Cd and Se were prepared separately.
  • the cation solution was prepared by dissolving 435 mg of cadmium nitrate tetrahydrate in 9.6 ml of trioctylphosphine (TOP). This solution was heated to 100°C under vacuum for 30 minutes. The reaction mixture was purged with Ar three times and then cooled to room temperature for later use.
  • the anion solution was prepared by mixing 182 mg of 200 mesh Se powder in 2.8 ml TOP
  • the coordinating solvent, trioctyphosphine oxide (TOPO) was degassed under vacuum at HO 0 C three times and back filled with Ar over a two hour period .
  • TOPO trioctyphosphine oxide
  • the Cd (0.5ml) and Se (0.6ml) were mixed in a teflon sealed reaction vial, and diluted with 3.9 ml molten TOPO (approximately 65°C) to make a 5 ml solution.
  • the reaction vessel was placed in the chamber of the microwave reactor at room temperature. 300 Watts were applied for several seconds, at which time the temperature spiked from 40°C to 23O 0 C in 15 seconds. The power was reduced to 40 Watts to stabilize the temperature at 25O 0 C for 8 minutes. At 8 minutes, the power was turned off and the reaction was quenched. This resulted in a 4.6 run CdSe nanoparticle, approximated by the excitonic peak position, as shown in FIG. 3, wherein traces 18 and 20 represent the absorption and photoluminescence, respectively, of CdSe grown from cadmium nitrate and trioctylphosphineselenide. Note that nanoparticle diameter can be tuned by reaction temperature.
  • Triethylphosphine oxide (C 2 H 5 ) 3 P O 323.2 35.5
  • Tributylphosphine oxide (C 4 H 9 ) 3 P O 323.2 26.4
  • Triheptylphosphine oxide (C 7 Hi 5 ) 3 P O 323.2 30.4
  • Example 4 Preparation of InP from In(OAc) and P(SiMe 3 ) 3
  • the preparation of the stock precursor solutions was done according to literature methods, such as those in [9].
  • a solution of indium acetate and hexadecanoic acid was prepared in hexadecene.
  • the mole ratio of In to hexadecanoic acid was adjusted to a 1 to 3.
  • the salts were dissolved at 100 0 C to make a 15.6 mM solution in In.
  • the solution was degassed at this temperature for 1 hour and purged with Ar three times.
  • a stock solution of tris(trimethylsilyl) phosphine at 86.1 mM was prepared in dry hexadecene.
  • the In and P precursors were mixed at 50 0 C in a 10 ml sealed reaction vessel in a 2:1 ratio to make a total volume of 5 ml precursor solution.
  • the reaction vessel was irradiated with 300 watts of power until the solution reached a temperature of 280°C. The power was reduced to maintain 280 watts. This temperature and power was maintained for 15 minutes, at which time the reaction was rapidly quenched. High heating rate: 30°C/min
  • Example 5 Preparation of HF etched In ( i_ X) Ga x P nanoparticles (0 ⁇ x ⁇ 0.2) and its photoluminescence quantum efficiency.
  • TABLE 1 represents relationship between Ga concentration (x) Of In(I-X)Ga x P nanoparticles before etching, quantum efficiency before etching, etching time, and quantum efficiency after etching.
  • * x represents Ga concentration in In ⁇ 1-x )Ga x P.
  • the stock solution was prepared by a modification of literature methods [9]. Indium III acetate (0.700 mmol), gallium III 2,4-pentanedionate (0.070 mmol) and hexadecanoic acid (2.30 mmol) were mixed with 50 ml either octadecene or hexadecene. The mixture was heated to 160°C until the solution turned clear. The temperature of the stock solution was reduced to 110°C under vacuum and purged with Ar three times.
  • the cation stock solution was prepared with octadecene and mixed with tris(trimethylsilyl)phosphine in the reaction vessel via syringe at 50°C with a cation : anion mole ratio of 2:1. 5 ml of the stock solution was placed in a 10 ml sealed reactor vial (CEM). The 2.3 ran quantum dots were prepared in the same fashion, but the stock solution was prepared in hexadecene.
  • Reactor temperature and pressures were monitored continuously to ensure safety, with pressures not exceeding 1.7 atm during the course of the reaction.
  • the power level of the ramp was 300 watts.
  • the hold temperature was 280°C for 15 min., with a constant power level of 280 watts during the reaction.
  • the reaction vessel was rapidly cooled, via a quenching Oswald Ripening process, from 280 0 C to 95 0 C over a period of 2 min using compressed air.
  • the ramp rate to achieve the hold temperature ranged from 4 - 6 minutes with the more dilute samples taking longer, due to the heating arising from direct dielectric heating of the precursors, rather then the thermal heating of the solvent. Size control for these materials was achieved by controlling the concentration of the constituent elements in the reactant.
  • FIG. 4A illustrates the absorption and FIG. 4B illustrates the photoluminescence of InGaP nanoparticles synthesized at 280 0 C for 15 minutes at 280 Watts.
  • Traces 22 and 26 represent InGaP synthesized with hexadecene (HDE) as the non-coordinating solvent
  • traces 24 and 28 represent InGaP synthesized with octadecene as the non-coordinating solvent.
  • FIG. 5 illustrates the absorption and photoluminescence of InGaP showing the dependence of crystallinity on power
  • trace 30 represents the absorption for InGaP and trace 32 represents the photoluminescence for InGaP that were synthesized with a constant power of 230 watts
  • trace 34 represents the absorption for InGaP
  • trace 36 represents the photoluminescence for InGaP that were synthesized at a constant power of 270 watts.
  • the defect emission can be attributed to surface vacancies or glide plane defects. It is clear that not only high temperature is important for high quality material, but high power is needed as well.
  • the structural characterization of the material exhibits the zinc blende structure of bulk InP.
  • FIG. 6 is a flowchart that illustrates the processing steps for synthesizing nanoparticles used in the preferred embodiment of the present invention. These steps are typically performed using a single reaction vessel, continuous flow reactor or stopped flow reactor.
  • Block 38 represents the step of preparing one or more constituent elements at or near room temperature, wherein the constituent elements include ionic liquids that enhance formation rates of the nanoparticles, and the room temperature is below 100°C.
  • a dielectric constant of a main one of the constituent elements is 20 or higher.
  • Block 40 represents the step of heating the prepared constituent elements to an elevated temperature using high-rate heating, in order to create a reaction mixture.
  • the heating step is performed using microwave irradiation, and the high heating rate comprises a rate of 30°C/min or higher.
  • Block 42 represents the step of stabilizing the reaction mixture at the elevated temperature.
  • the elevated temperature is greater than 240°C.
  • Block 44 represents the step of cooling the stabilized reaction mixture to a reduced temperature using high-rate cooling.
  • the high cooling rate comprises a rate of 125 0 C /min or higher.
  • FIG. 7 is an illustration of the processing steps for synthesizing nanoparticles used in the preferred embodiment of the present invention.
  • the reactor 46 typically comprises a single reaction vessel, continuous flow reactor or stopped flow reactor.
  • the reactant 48 includes the constituent elements, such as one or more precursors 50 and 52 that contain elements that turn into nanoparticles, passivants 54, and/or solvents 56.
  • Arrow 58 represents the heating/cooling process that creates the nanoparticles 60.
  • the nanoparticles' 60 growth is controlled by adjustment of kinetic and thermodynamic barriers by power, temperature, time or additive.
  • colloidal nanoparticles can be rapidly synthesized under high power microwave radiation to provide industrial scalability with no sacrifice to structural integrity or optical quality.

Abstract

A method for synthesis of high quality colloidal nanoparticles using comprises a high heating rate process. Irradiation of single mode, high power, microwave is a particularly well-suited technique to realize high quality semiconductor nanoparticles. The use of microwave radiation effectively automates the synthesis, and more importantly, permits the use of a continuous flow microwave reactor for commercial preparation of the high quality colloidal nanoparticles.

Description

METHOD FOR SYNTHESIS OF COLLOIDAL NANOP ARTICLES
CROSS REFERENCE TO RELATED APPLICATION This application is a continuation-in-part of the following co-pending and commonly-assigned patent applications:
Serial Number 11/103,159, filed on April 11, 2005, by Geoffrey F. Strouse, Jeffrey A. Gerbec, and Donny Magana, entitled METHOD FOR SYNTHESIS OF COLLOIDAL NANOP ARTICLES, attorneys' docket number 30794.133-US-I1, which application is a continuation-in-part of:
Serial Number 10/945,053, filed on September 20, 2004, by Geoffrey F. Strouse, Jeffrey A. Gerbec, and Donny Magana, entitled METHOD FOR SYNTHESIS OF COLLOIDAL NANOP ARTICLES, attorneys' docket number 30794.111 -US-Ul, both of which applications are incorporated by reference herein.
BACKGROUND OF THE INVENTION 1. Field of the Invention
The invention is related to chemical synthesis of nanoparticles, and more particularly, to the large-scale, safe, convenient, reproducible, energy-conserving synthesis of highly-dispersive inorganic nanoparticles with narrow size distribution. The invention also involves highly luminescent III-V semiconductor nanoparticles with the merits described above.
2. Description of the Related Art
(Note: This application references a number of different publications as indicated throughout the specification by one or more reference numbers within brackets, e.g., [x]. A list of these different publications ordered according to these reference numbers can be found below in the section entitled "References." Each of these publications is incorporated by reference herein.)
Over the past decade, numerous advances have been made in the synthetic procedures for formation and isolation of high quality inorganic nanoparticles. These materials are finding applications in a wide range of disciplines, including optoelectronic devices, biological tagging, optical switching, solid-state lighting, and solar cell applications. [1-11]
One of the major hurdles for industrialization of these materials has been the development of a reproducible, high quantity synthetic methodology that is adaptable to high throughput automation for preparation of quantities of > 100 ' s of grams of single size (<5% RMS) crystalline quantum dots of various composition to be isolated. [12-13]
The general synthetic approach for preparation of colloidal semiconductor nanoparticles employs a bulky reaction flask under continuous Ar flow with a heating mantle operating in excess of 240°C. The reaction is initiated by rapid injection of the precursors, which are the source materials for the nanoparticles, at high temperatures and growth is controlled by the addition of a strongly coordinating ligand to control kinetics. And to a more limited extent, domestic microwave ovens have been used to synthesize nanoparticles. [14-19] The high temperature method imposes a limiting factor for industrial scalability and rapid nanomaterial discovery for several reasons: (1) random batch-to-batch irregularities such as temperature ramping rates and thermal instability; (2) time and cost required for preparation for each individual reaction; and (3) low product yield for device applications.
While recent advances in the field have developed better reactants, including inorganic single source precursors, metal salts, and oxides; better passivants, such as amines and non-coordinating solvents; and better reaction technologies, such as thermal flow reactors; the reactions are still limited by reproducibility. Coupled to this problem is the lack of control over reaction times, which require continuous monitoring. In the case of III-V compound semiconductors, the synthetic pathways have rates of growth on the order of days, while in the case of II- VFs, size control is very difficult and depends on the ability to rapidly cool the reaction. In these cases, the reaction depends on heating rate, heat uniformity over the reaction vessel, stirring and rapid and uniform cool-down.
SUMMARY OF THE INVENTION
To overcome the limitation in the prior art described above, and to overcome other limitations that will become apparent upon reading and understanding the present specification, the present invention describes methods of chemical synthesis of nanoparticles, such as quantum dots, comprising a high temperature ramp process, warranting large-scale, safe, convenient, reproducible, and energy-efficient production.
In the present invention, inorganic nanoparticles are synthesized by a scheme that comprises heating of the reaction system. It has been found that the above mentioned limitation can be overcome by including a heating process with high ramping rate. Hence, the critical issues that distinguish the present invention are:
(1) a method for synthesizing nanoparticles that comprises a high temperature ramping rate during heating,
(2) the above mentioned method wherein microwave irradiation is used for the heating process,
(3) the above mentioned method wherein the dielectric constant of the main constituent element, which is the element that dominates the largest amount of molar ratio among the entire reactant, is 20 or lower,
(4) the above mentioned method where the formation rates and growth processes are manipulated through microwave power, reaction temperature, or additives by control of the kinetic and thermodynamic barriers at the reactant, surface, or growing material; (5) the above mentioned method wherein the formation rates of nanoparticles is enhanced by adding stoichiometric amounts of ionic liquids to the reaction medium; and
(6) high crystallinity of the nanoparticles that is often achieved by employing the results of the present invention.
In the present invention, in addition to the method of nanoparticles synthesis described above, both highly luminescence M-V semiconductor nanoparticles, which have reduced toxicity compared to II- VI semiconductor nanoparticles such as CdSe and CdTe, and its preparation are disclosed.
BRIEF DESCRIPTION OF THE DRAWINGS
Referring now to the drawings in which like reference numbers represent corresponding parts throughout:
FIG. 1 is a graph that illustrates the absorption and photoluminescence for CdSe for a series of reactions containing the ionic liquid l-hexyl-3- methylimidazolium chloride showing the formation rate dependence on applied power;
FIG. 2 is a graph that illustrates the absorption and photoluminescence for 4.5 nm and 5.5 nm CdSe; FIG. 3 is a graph that illustrates the absorption and photoluminescence for 4.6 nm CdSe;
FIGS. 4A and 4B are graphs that illustrate the absorption and photoluminescence of InGaP nanocrystals synthesized with hexadecene (HDE) and octadecene as the non-coordinating solvents; FIG. 5 is a graph that illustrates the absorption and photoluminescence of
InGaP showing the dependence of crystallinity on power;
FIG. 6 is a flowchart that illustrates the processing steps used in the preferred embodiment of the present invention; and FIG. 7 is an illustration of the processing steps used in the preferred embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION In the following description of the preferred embodiment, reference is made to the accompanying drawings which form a part hereof, and in which is shown by way of illustration a specific embodiment in which the invention may be practiced. It is to be understood that other embodiments may be utilized and structural changes may be made without departing from the scope of the present invention.
1. The reaction system
In the present invention, nanoparticles are synthesized by heating the reaction system from room temperature to elevated temperatures. The reaction system herein is a closed system that consists of materials that are necessary for the synthetic reaction. Each of these materials will hereafter be called a constituent element. In the most primitive reaction system, the sole constituent element is the precursor. However, in general, the constituent elements are solvent and precursor. The solvent can be a mixture of plural solvents, and also the precursor can be a mixture of plural precursors. These elements can either be dispersed homogeneously or inhomogeneously.
The constituent elements of the reaction system are mixed at or near room temperature and heated for nanoparticle synthesis. Here, near room temperature is below 100°C.
2. Heating and cooling of the reaction system
In the present invention, the temperature of the reaction system is typically monitored by devices such as thermometer, pyrometer, or thermocouples. The reaction described in the present invention comprise one or more of each of the (1) heating at a high heating rate, (2) stabilization at elevated temperature, and (3) cooling at a high cooling rate.
As a specific feature in one of the preferred embodiments, heating of the reaction system is performed by microwave irradiation. [20-23] The heating of the reaction system can either be achieved by sole use of microwave or with the aid of other heat sources such as oil-bath, mantle-heater, or burners. The frequency of the microwave is typically 2.45 GHz but not limited. Use of focused microwave is preferred over unfocused, and single-mode is preferred over multimode for efficient heating. Ramping the temperature of the reaction system up is done solely by microwave irradiation or microwave irradiation with the use of additional heat sources, during which the heating rate can be controlled by the input power of the microwave by a continuous or pulsed power supply. The average heating rate during each process of the synthesis is defined as:
(Temperature at the end of heating(°C) - Temperature at the beginning of heating(°C)) / (Duration of heating (min))
The synthetic scheme described in the present invention comprises one or more stages of high heating rate. Here, high heating rate refers to a rate of 30°C/min or higher, more preferably 32°C/min or higher, most favorably 34°C/min or higher. When the average heating rate is below 30°C/min, synthesis may result in nanoparticulate materials with unfavorable properties such as lower dispersibility or wider size distribution.
During the stage where the temperature is stable at elevated temperature, heating by microwave irradiation with or without other heat sources is performed together with cooling by using means as flow of air or water, ice, oil or cryogenic gas, to balance the input/output of heat to/from the system to hold the temperature constant. When the heat capacitance of the reaction system is large enough such that the change in the temperature can be ignored, temperature stabilization may be achieved by merely leaving the system free of any heat input/output. Here, stable temperature refers to processes in which the temperature change is 5°C/min or less.
Cool-down of the reaction system can be achieved by removing heat from the system by standard means such as air, water, ice, oil or cryogenic gas. Microwave irradiation with or without other heat sources can be used to control this cool-down process. The average cooling rate of each cool-down process is defined as:
(Temperature at the beginning of cooling(°C) - Temperature at the end of cooling(°C)) / (Duration of cooling (min))
The synthetic scheme described in the present invention comprises one or more stages of high cooling rate. Here, high cooling rate refers to a rate of 8O0C /min or higher, more preferably 85°C/min or higher, most favorably 90°C/min or higher. When the average cooling rate is below 80°C/min, synthesis may result in nanoparticulate materials with unfavorable properties such as lower dispersibility or wider size distribution. Hereinafter, this high rate cooling process may be referred to as quenching. Hence, the simplest embodiment of the present invention for synthesizing nanoparticles comprise of three stages that are high-rate heating, temperature stabilization, and high-rate cooling.
3. Additives to the reaction system
Selective heating of microwave absorbing materials allows rapid heating rates and high temperatures to be reached driving chemical reactions, a critical condition for nuclei formation in the nanomaterial formation process. In addition, they can overcome thermodynamic barriers in the reaction trajectory allowing larger nanoparticles to be grown. Additives, including polar and ionic molecules such as organic salts (or ionic liquids), have high cross-sections for absorption and are commonly used in microwave-assisted synthesis to help heat non polar solvents. In order to control the heating and cooling rates of the reaction system, additives can be intentionally introduced to the system as a constituent element. In general, there is no limitation to the nature of such additives, and can be either organic or inorganic materials. The additives can either be dispersed homogeneously or inhomogeneously in the reaction system. Moreover, the additives can be present in the reaction system from the beginning of the process or can be introduced during the course of the reaction. Examples of such additives are: graphite, silicon carbide, glycols, ionic liquids, tetrabutylammonium bromide, mono and dialkyl glycol ethers and cholesterols. Furthermore, for synthesizing the same or different nanoparticles, in addition to the precursors that exist in the reaction system, one may further introduce the same or different precursors during the course of reaction.
4. The main constituent elements of the reaction system As described above, the reaction system comprises one or more constituent elements. The main constituent element is the element with the largest molar equivalent. In the present invention, the dielectric constant of the main constituent element is 20 or less, preferably 18 or less, more preferably 16 or less, and most preferably 14 or less. If the dielectric constant is over 20, it may result in loss of stability of the precursors in the system due to the exceedingly high polarity of the main constituent element. Additives can be introduced into the system before or during the course of reaction as long as their amounts are less than the main constituent element in molar equivalent.
5. Nanoparticles
The nanoparticles synthesized by the method described in the present invention comprise mainly inorganic materials, and their diameters are on the order of nanometers (nm). The main crystal may be single crystal, polycrystal, alloys with or without phase separation due to stoichiometric variations, or core-shell structures that will be described later. The average diameter of such crystals are 0.5-1 OOnm, preferably l~20nm in order to warrant dispersibility, more preferably 2~12nm, most preferably 2-1 Onm. Such diameters can be determined through characterization by transmission electron microscopy (TEM). When the micrographs cannot be obtained with sufficient contrast to make such determination of the diameter, for instance when the constituent atoms are those of low atomic numbers, techniques such as matrix assisted laser desorption ionization spectroscopy, atomic force microscopy (AFM), or for colloidal solutions, dynamic light scattering or neutron scattering can often be used instead. While there is no limitation in the size distribution of the above mentioned nanoparticles, in general, the standard deviation is ±20%, preferably ±15%, more preferably ±10%, and most preferably ±5%. When the size distribution exceeds the above, the nanoparticles will often not exhibit their desired physical and chemical properties to their best performance. Methods that are typically used to characterize the crystallinity of the nanoparticles are dark field transmission electron microscopy which is used to look for glide plane defects and/or twinning. Powder x-ray diffraction, which reveals the approximate diameters and shapes of the crystallites through peak intensities and scherrer broadening of the reflection peaks. Finally, z- contrast transmission electron microscopy is used to image the dopant ion in nanoparticle alloys.
6. The composition of semiconductor nanoparticles
When the nanoparticles synthesized by the method described in the present invention are semiconductor, there is no limitation in their composition, but typical examples are single substances of Group 14 elements, such as C, Si, Ge, or Sn, single substances of Group 15 elements, such as P (black phosphorus), single substances of Group 16 elements, such as Se or Te, compounds of Group 14 elements, such as SiC, compounds of Group 14 and Group 16 elements, such as GeS, GeSe, GeTe, SnS, SnSe, SnTe, PbS, PbSe, or PbTe, and their ternary and quaternary alloys, such as GexSn1-xSySei-y (x=0~l, y=0~l), compounds of Group 13 and Group 15 elements, such as AlN, AlP, AlAs, AlSb, GaN, GaP, GaAs, GaSb, InN, InP, InAs, or InSb, and their ternary and quaternary alloys, such as GaxIn1-xPyAsi-y (x=0~l, y=0~l), compounds of Group 13 and Group 16 elements or their alloys, such as GaS, GaSe, GaTe, InS, InSe, InTe, TlS, TlSe, TlTe, and their ternary and quaternary alloys, such as Gaxήii-xSySei-y (x=0~l, y=0~l), compounds of Group 13 and Group 17 elements, such as TlCl, TlBr, TlI, compounds of Group 12 and Group 16 elements, such as ZnS, ZnSe, ZnTe, CdS, CdSe, CdTe, HgS, HgSe, HgTe, and their ternary and quaternary alloys, such as ZnxCd1 -xSySei-y (x=0~l, y=0~l), compounds of Group 15 and Group 16 elements, such as As2S3, As4S4, As2Se3, As2Te3, Sb2S3, Sb2Se3, Sb2Te3, Bi2S3, Bi2Se3, Bi2Te3, and their ternary and quaternary alloys, compounds of Group 11 and Group 16 elements, such as CuO, Cu2O, Ag2S and CuSe, compounds of Group 11 and Group 17 elements, such as CuCl, AgBr and AuCl, ccompounds of Group 10 and Group 16 elements, such as NiS2, PdS and PtSe, compounds of Group 9 and Group 16 elements, such as CoSe, RhS and IrSe, compounds of Group 8 and Group 16 elements, such as FeO, FeS, FeSe and RuS, compounds of Group 7 and Group 16 elements, such as MnO, MnS, MnSe and ReS, compounds of Group 6 and Group 16 elements, such as Cr2S3, Cr2Se3 and MoS2, compounds of Group 5 and Group 16 elements, such as VS, VSe, and NbS, compounds of Group 4 and Group 16 elements, such as TiO2, TiS2, and ZrS2, compounds of Group 2 and Group 16 elements, such as BeO, MgS, and CaSe, and chalcogen spinnels, barium titanates (BaTiO3).
7. Core-shell structures
The crystals that form the main body of the nanoparticles of the present invention can be the so-called core-shell structure in which the crystals comprise inner-core and outer-shell for modification of their physical and chemical properties. Such shells are preferably metal, semiconductor, or insulator. As for semiconductor, examples of preferred materials are compounds of Group 13 and Group 15 elements, such as ME (where M = B, Al, Ga, In and E = N, P, As, Sb) and compounds of Group 12 and Group 16 elements, such as MA (where M = Zn, Cd, Hg and A = O, S, Se, Te) and compounds of Group 2 and Group 16 elements, such as TA (where T = Be, Mg, Ca Sr, Ba and A = O, S, Se, Te). Examples of more preferred materials for the shells are III-V compound semiconductors, such as BN, BAs, or GaN, II- VI compound semiconductors, such as ZnO, ZnS, ZnSe, CdS, compounds of Group 12 and Group 16 elements, such as MgS, or MgSe.
8. Doping of nanoparticles
In the compositions described above in sections 5 and 6, minute amounts of additives can be intentionally doped for modification of the physical and chemical properties of the nanoparticles. Examples of such doping materials are Al, Mn, Cu, Zn, Ag, Cl, Ce, Eu, Tb, Er, or Tm.
9. Organic compounds present at the nanoparticle surface The nanoparticles synthesized by the method described in the present invention can have organic compounds attached to their surface. The attachment of organic compounds to the surface is defined as the state in which the organic compound is chemically bonded to the surface. While there is no limitation in the form of bonding between the organic compound and the nanoparticle surface, examples are coordination bond, covalent bond, relatively strong bonds such as ionic bond, or through relatively weak interaction such as van der Waals force, hydrogen bond, hydrophobic-hydrophobic interaction, or entanglement of molecular chains. The organic compounds can be a single species or a mixture of two or more.
In general, in order to attach to the nanoparticle surface, organic compounds consist of the following coordinating functional groups that form bonds to the nanoparticle surface. Typically, coordinating functional groups that comprise Group 15 or Group 16 elements constitute the above mentioned organic compounds. Examples of such functional groups are, primary amines, secondary amines, tertiary amines, radicals containing nitrogen multiple bonds, such as nitryl, or isocyanate, nitrogen containing radicals such as nitric aromatics, such as pyridine or triazine, functional groups containing Group 15 element such as phosphorus containing radicals, such as primary phosphine, secondary phosphine, tertiary phosphine, primary phosphine oxide, secondary phosphine oxide, tertiary phosphine oxide, primary phosphine selenide, secondary phosphine selenide, tertiary phosphine selenide, or phosphonic acid, oxygen containing radicals, such as hydroxyl, ether, or carboxyl, sulfur containing radicals, such as thiol, methylsulfide, ethylsulfide, phenylsulfide, methyldisulphide, phenyldisulfide, thioacid, dithioacid, xanthogenic acid, xanthete, isothiocyanate, thiocarbamate, sulfonic, sulfoxide, or thiophene rings, functional groups containing Group 16 element such as selenium containing radicals, such as -SeH, -SeCH3, -SeC6Hs, or tellurium containing radicals, such as -TeH, - TeCH3, -TeC6H5. Among these examples, functional groups containing nitrogen such as pyridine rings, functional groups containing Group 15 elements such as phosphorus, such as primary amine, tertiary phosphine, tertiary phosphine oxide, tertiary phosphine selenide, or phosphonic acid, functional groups containing oxygen, such as hydroxyl, ether, or carboxyl, or functional groups containing Group 16 elements such as sulfur, such as thiol or methylsulfide, are used preferably. More precisely, trialkylphosphines, trialkylphosphine oxides, alkane sulfonic acids, alkane phosphonic acids, alkyl amines, dialkylsulfoxides, dialkylether, and alkylcarboxyl acids are such examples.
While the detailed coordination chemistry of these organic compounds on the nanoparticle surface is not totally understood, in the present invention, as long as the nanoparticle surface is covered with these organic compounds, the functional groups may either retain their original structure or be modified.
10. The amount of organic compounds at the nanoparticle surface In the present invention, the amount of organic compounds present at the surface depends on the kind of nanoparticles and their surface area, such as their size, after proper separation, among the total weight of the nanoparticles and the organic compounds, is typically 1 to 90% of the weight, and for chemical stability and in order to disperse them into organic matrices such as solvents or resin binders that are practically important preferably 5~80%, more preferably, 10-70%, and most preferably 15-60%. The above mentioned organic composition can be determined, for example, by the various elemental analyses or thermogravimetric analysis (TGA). Furthermore, information regarding the chemical species and environment can be obtained by infrared (IR) spectroscopy or nuclear magnetic resonance (NMR).
11. Precursors When the nanoparticles synthesize by the method described in the present invention are semiconductor, cationic materials that can be chosen from elements in Group 2-15 and anionic materials that can be chosen from elements in Group 15-17 can be used as precursors. When more than one material is used, they may be mixed prior to the synthetic reaction or may be separately introduced into the reaction system.
Examples of the precursors for semiconductors that contain cationic elements are, dialkylated compounds of Group 2 elements, such as diethyl magnesium, or di-n- butyl magnesium; alkyl halides of Group 2 elements, such as methyl magnesium chloride, methyl magnesium bromide, methyl magnesium iodide, ethynyl magnesium chloride; dihalides, such as magnesium iodide; halides of Group 4 elements, such as titanium (IV) tetrachloride, titanium (IV) tetrabromide, or titanium (IV) tetraiodide; halides of Group 5 elements, such as vanadium (II) dichloride, vanadium (FV) tetrachloride, vanadium (II) dibromide, vanadium (IV) tetrabromide, vanadium (II) diiodide, vanadium (IV) tetraiodide, tantalum (V) pentachloride, tantalum (V) pentabromide, and tantalum (V) pentaiodide; halides of Group 6 elements, such as chromium (III) tribromide, chromium (III) triiodide, molybdenum (IV) tetrachloride, molybdenum (IV) tetrabromide, molybdenum (IV) tetraiodide, tungsten (IV) tetrachloride, tungsten (FV) tetrabromide, and tungsten (FV) tetraiodide; halides of Group 7 elements, such as manganese (II) dichloride, manganese (II) dibromide, and manganese (III) diiodide; halides of Group 8 elements, such as iron (II) dichloride, iron (III) trichloride, iron (II) dibromide, iron (III) tribromide, iron (II) diiodide, and iron (III) triiodide; halides of Group 9 elements, such as cobalt (II) dichloride, cobalt (II) dibromide, and cobalt (II) diiodide; halides of Group 10 elements, such as nickel (II) dichloride, nickel (II) dibromide, and nickel (II) diiodide; halides of Group 11 elements, such as copper (I) iodide; dialkylated compounds of Group 12 elements, such as dimethyl zinc, diethyl zinc, di-n-propyl zinc, diisopropyl zinc, di-n-butyl zinc, diisobutyl zinc, di-n-hexyl zinc, dicyclohexyl zinc, dimethyl cadmium, diethyl cadmium, dimethyl mercury (II), diethyl mercury (II), and dibenzyl mercury (II); alkyl halides of Group 12 elements, such as methyl zinc chloride, methyl zinc chloride, methyl zinc iodide, ethyl zinc iodide, methyl cadmium chloride, and methyl mercury (II) chloride; dihalides of Group 12 elements, such as zinc chloride, zinc bromide, zinc iodide, cadmium chloride, cadmium bromide, cadmium iodide, mercury
(II) chloride, zinc chloride iodide, cadmium chloride iodide, mercury (II) chloride iodide, zinc bromide iodide, cadmium bromide iodide, and mercury (II) bromide iodide; carboxylic acid salt of Group 12 elements, such as zinc acetate, cadmium acetate, and 2-ethyl hexanoic acid cadmium; oxides of Group 12 elements, such as cadmium oxide and zinc oxide; trialkylated compounds of Group 13 elements, such as trimethyl boron, tri-n-propyl boron, triisopropyl boron, trimethyl aluminum, trimethyl aluminum, triethyl aluminum, tri-n-butyl aluminum, tri-n-hexyl aluminum, trioctyl aluminum, tri-n-butyl gallium (III), trimethyl indium (III), triethyl indium (III), and tri-n-butyl indium (III); dialkyl monohalides of Group 13 elements, such as dimethyl aluminum chloride, diethyl aluminum chloride, di-n-butyl aluminum chloride, di¬ ethyl aluminum bromide, di-ethyl aluminum iodide, di-n-butyl gallium (III) chloride, or di-n-butyl indium (III) chloride; monoalkyl dihalides of Group 13 elements, such as methyl aluminum dichloride, ethyl aluminum dichloride, ethyl aluminum dibromide, ethyl aluminum diiodide, n-butyl aluminum dichloride, n-butyl gallium
(III) dichloride, and n-butyl indium (III) dichloride; tri-halides of Group 13 elements, such as boron trichloride, boron tribromide, boron triiodide, aluminum trichloride, aluminum tribromide, aluminum triiodide, gallium (III) trichloride, gallium (III) tribromide, gallium (III) triiodide, indium (III) trichloride, indium (III) tribromide, indium (III) triiodide, gallium (III) dichloride bromide, gallium (III) dichloride iodide, gallium (III) chloride diiodide, and indium (III) dichloride iodide; carboxylic acid salt of Group 13 elements, such as indium (III) acetate and gallium (III) acetate; halides of Group 14 elements, such as germanium (IV) tetrachloride, germanium (IV) tetrabromide, germanium (FV) tetraiodide, tin (II) dichloride, tin (IV) tetrachloride, tin (II) dibromide, tin (IV) tetrabromide, tin (II) diiodide, tin (IV) tetraiodide, tin (IV) dichloride diiodide, tin (IV) tetraiodide, lead (II) dichloride, lead (II) dibromide, and lead (II) diiodide; hydrates of Group 14 elements, such as diphenyl silane; trialkyls of Group 15 elements, such as trimethyl antimony (III), triethyl antimony (III), tri-n- butyl antimony (III), trimethyl bismuth (III), triethyl bismuth (III), and tri-n-butyl bismuth (III); monoalkyl halides of Group 15 elements, such as methyl antimony (III) dichloride, methyl antimony (III) dibromide, methyl antimony (III) diiodide, ethyl antimony (III) diiodide, methyl bismuth (III) dichloride, and ethyl bismuth (III) diiodide; trihalides of Group 15 elements, such as arsenic (III) trichloride, arsenic (III) tribromide, arsenic (III) triiodide, antimony (III) trichloride, antimony (III) tribromide, antimony (III) triiodide, bismuth (III) trichloride, bismuth (III) tribromide, and bismuth (III) triiodide; etc. For synthesis of nanoparticles of Group 14 elemental semiconductors such as
Si, Ge, or Sn, halides of Group 14 elements, such as germanium (IV) tetrachloride, germanium (IV) tetrabromide, germanium (IV) tetraiodide, tin (II) dichloride, tin (IV) tetrachloride, tin (II) dibromide, tin (IV) tetrabromide, tin (II) diiodide, tin (IV) diiodide, tin (IV) dichloride diiodide, tin (IV) tetraiodide, lead (II) dichloride, lead (II) dibromide, and lead (II) diiodide; or hydrides and/or alkylated compounds of Group 14 elements, such as diphenyl silane, can be used as precursors.
Examples of anionic compounds that can be used as precursors for semiconductors are, elements of Groups 15-17, such as N, P, As, Sb, Bi, O, S, Se, Te, F, Cl, Br, and I; hydrides of Group 15 elements, such as ammonia, phosphine (PH3), arsine (AsH3), and stibine (SbH3); silylated compounds of elements of Group 15 of the periodic table, such as tris(trimethylsilyl) amine, tris(trimethylsilyl) phosphine, and tris(trimethylsilyl) arsine; hydrides of Group 16 elements, such as hydrogen sulfide, hydrogen selenide, and hydrogen telluride; silylated compounds of Group 16 elements, such as bis(trimethylsilyl) sulfide and bis(trimethylsilyl) selenide, alkaline metal salts of Group 16 elements, such as sodium sulfide and sodium selenide; trialkylphosphine chalcogenides, such as tributylphosphine sulfide, trihexylphosphine sulfide, trioctylphosphine sulfide, tributylphosine selenide, trihexylphosphine selenide, and trioctylphosphine selenide, hydrides of Group 17 elements, such as hydrogen fluoride, hydrogen chloride, hydrogen bromide, and hydrogen iodide; and silylated compounds of Group 17 elements, such as trimethylsilyl chloride, trimethylsilyl bromide, and trimethylsilyl iodide; etc. Among these, from the stand points of reactivity, stability, and handling, the preferred materials are, elemental materials in Groups 15-17, such as phosphorus, arsenic, antimony, bismuth, sulfur, selenium, tellurium, and iodine; silylated compounds of Group 15 elements, such as tris(trimethylsilyl) phospine and tri(trimethylsilyl) arsine; hydrides of Group 16 elements, such as hydrogen sulfide, hydrogen selenide and hydrogen telluride; silylated compounds of Group 16 elements, such as bis(trimethylsilyl) sulfide and bis(trimethylsilyl) selenide; alkaline metal salts of Group 16 elements, such as sodium sulfide and sodium selenide; trialkylphosphine chalcogenides such as, tributylphosphine sulfide, trihexylphosphine sulfide, trioctylphosphine sulfide, tributylphosphine selenide, trihexylphosphine selenide, and trioctylphosphine selenide; silylated compounds of Group 17 elements, such as trimethylsilyl chloride, trimethylsilyl bromide, and trimethysilyl iodide; etc. Among the above, more preferably used materials are, elemental materials in Groups 15 and 16, such as phosphorus, arsenic, antimony, sulfur, and selenium; silylated compounds of Group 15 elements, such as tris(trimethylsilyl) phospine and tri(trimethylsilyl) arsine; silylated compounds of Group 16 elements, such as bis(trimethylsilyl) sulfide and bis(trimethylsilyl) selenide; alkaline metal salts of Group 16 elements, such as sodium sulfide and sodium selenide; trialkylphosphine chalcogenides such as, tributylphosphine sulfide, trioctylphosphine sulfide, tributylphosphine selenide, and trioctylphosphine selenide; etc.
Examples of precursors for metal nanoparticles for group 4 through 13 including Au, Ag, Fe, Ni, Co, Pt, Pd, Cu, Hg, In, NiPt, FePt, FeCo are: Gold: auric acid, chlorocarbonyl gold (I, and gold (I) chloride; Silver: silver (I) acetate, silver (I) nitrate, silver (I) chloride, silver (I) bromide, silver (I) iodide, and silver sulfate; Iron (either as II or III oxidation state): iron chloride, iron bromide, iron iodide, iron (0) carbonyl, iron acetate, iron acetyl acetonate, iron hexapyridine, iron hexamine, iron sterate, iron palmitate, iron sulfonate, iron nitrate, iron dithiocarbamate, iron dodecylsulfate, and iron tetrafluroborate; Nickel: nickel (II) nitrate, nickel (II) chloride, nickel (II) bromide, nickel (II) iodide, nickel (II) carbonyl, nickel (II) acetate, nickel (II) acetyl acetonate, nickel (II) hexapyridine, nickel (II) hexamine, nickel (II) sterate, nickel (II) palmitate, nickel (II) sulfonate, nickel (II) nitrate, nickel (II) dithiocarbamate, nickel (II) dodecylsulfate, and nickel (II) tetrafluroborate;
Cobalt: cobalt (II) nitrate, cobalt (II) chloride, cobalt (II) bromide, cobalt (II) iodide, cobalt (II) carbonyl, cobalt (II) acetate, cobalt (II) acetyl acetonate, cobalt (II) acetyl acetonate cobalt (II) hexapyridine, cobalt (II) hexamine, cobalt (II) sterate, cobalt (III) palmitate, cobalt (II) sulfonate, cobalt (II) nitrate, cobalt (II) dithiocarbamate, cobalt (II) dodecylsulfate, and cobalt (II) tetrafluroborate; Platinum: platinum (II) nitrate, platinum (II) chloride, platinum (II) bromide, platinum (II) iodide, platinum carbonyl, platinum (II) acetate, platinum (II) acetyl acetonate, platinum (II) hexapyridine, platinum (II) hexamine, platinum (II) sterate, platinum (II) palmitate, platinum (II) sulfonate, platinum (II) nitrate, platinum (II) dithiocarbamate, platinum (II) dodecylsulfate, and platinum (II) tetrafluroborate; Palladium: palladium (II) nitrate, palladium (II) chloride, palladium (II) bromide, palladium (II) iodide, palladium carbonyl, palladium (II) acetate, palladium (II) acetyl acetonate, palladium (II) hexapyridine, palladium (II) hexamine, palladium (II) sterate, palladium (II) palmitate, palladium (II) sulfonate, palladium (II) nitrate, palladium (II) dithiocarbamate, palladium (II) dodecylsulfate, and palladium (II) tetrafluroborate; Copper (I or II oxidation state) : copper nitrate, copper chloride, copper bromide, copper iodide, copper carbonyl, copper acetate, copper acetyl acetonate, copper hexapyridine, copper hexamine, copper sterate, copper palmitate, copper sulfonate, copper nitrate, copper dithiocarbamate, copper dodecylsulfate, and copper tetrafluroborate; Mercury:, dimethyl mercury (0), diphenyl mercury (0), mercury (II) acetate, mercury (II) bromide, mercury (II) chloride, mercury (II) iodide, and mercury (II) nitrate; Indium: trimethyl indium (III), indium (III) dichloride, indium (III) trichloride, indium (III) tribromide, and indium (III) triiodide.
12. Solvents
The solvent effect for nanoparticle formation under dielectric heating is twofold: (1) it provides the matrix for which the reactants form products; and (2) they have the ability to absorb microwaves to intrinsically heat the reaction matrix. The matrix effect can be noncoordinating or coordinating in nature. Noncoordinating implies that the solvent does not form bonds to the precursor molecules or intermediate complexes during nanoparticle formation (it usually does not have functional groups). Coordinating implies the solvent forms bonds to the precursor molecules and intermediates during nanoparticle formation. Noncoordinating solvents used for nanoparticle formation usually consist of long chain, high boiling alkanes and alkenes such as hexadecane, octadecane, eicosane, 1-hexadecene, 1-octadecene and 1-eicosene. Typical coordinating solvents consist of long chain (backbone of 6 to 20 carbons) alkyl amines (primary, secondary and tertiary), carboxylic acids, sulfonic acids phosphonic acids, phosphines and phosphine oxides.
The ability for a solvent to absorb microwaves is highly dependant on its dipole moment. The dipole moment is defined as the product of the distance between two charges and the magnitude of the charge; hence, when a coordinating solvent is used as the solvent, it has a higher propencity of heating the bulk solution faster than a noncoordinating solvent that has a lower dipole moment by definition. When comparing the heating rates of trioctylphosphineoxide (760°C/min) to 1- aminohexadecane (30°C/min), trioctylphosphineoxide converts electric energy to heat more efficiently. Comparing these to the heating rate of tetradecene (12°C/min) shows that the choice of solvents has a substantial influence on the rate at which the heat is transferred to the bulk solution.
One way to slow down the rate of heating for a solvent that absorbs microwave strongly, like trioctylphosphineoxide, is to reduce the incident microwave power. This will allow the ramp rate to be tailored to suite a particular nanoparticle formation.
Technical grade solvent dielectric heating rates for nanoparticle synthesis will depend on several factors: the dielectric constant, the volume of solvent, and its boiling point. For nonpolar solvents such as C6 - C20 straight chain alkanes, the heating rates are slow for 5 ml of solvent at 300 W of incident power. For example, super-heated noncoordinating technical grade octane plateaus at
147°C after 15 minutes of heating at 300 W with 10 arm of pressure. However, in the presence of Cd and Se monomers (57 mM), super-heating octane can reach nanoparicle formation temperatures as high as 250°C in 6 minutes with 15 atm of pressure with 300 W of incident microwave power. The lower boiling point alkanes will have a lower plateau temperature in terms of the maximum sustained temperature at high pressure. The higher boiling alkanes can achieve higher temperatures in a shorter period of time when compared to alkanes. When 5 ml of technical grade tetradecene is dielectrically heated at 300 W, it can reach 250°C in 13 min. Coordinating solvents typically heat faster at lower pressure due to their higher boiling points and functional groups. For example, 5 ml of technical grade hexadecylamine can be dielectrically heated at 300 W to 280°C in 11 minutes with 1 atm of pressure. In the same manner, trioctylphosphine oxide can be dielectrically heated to 28O0C in 15 seconds with 1 atm of pressure. 13. Ionic Liquids
Ionic liquids (ILs) translate very well to microwave-assisted formation of nanoparticles. The effect of the ionic liquid to rapidly heat the bulk solution can be traced back to their selective ability to couple with the microwaves and efficiently convert electromagnetic energy into heat. The effect of the higher heating rate in the presence of the ionic liquids increases the microscopic reaction temperatures at the forming nanoparticles. Whereas microwave power can overcome kinetic barriers, the addition of ionic liquids overcomes thermodynamic barriers in the reaction. This is seen in FIG. 1 to be critical for overcoming activation barriers during the growth phase for the II- VI materials. In addition, ILs can be used as unique passivants for nanoparticles. Appropriate selection can be utilized for all nanomateial compositions described herein.
The organic synthetic literature has shown that the use of ionic liquids can be used to aid heating of non-polar solvents such as hexanes, toluene and benzene. The high dielectric heating ability of ionic liquids at low concentrations compared to the solvent increases the microscopic temperature of the solution. It can therefore be imagined that by choosing a cation/anion pair that will not coordinate to the nanoparticles intermediates or the surface of growing nanoparticles, can aid as spectating microscopic heat sources. It is demonstrated that the use of a simple ionic liquid, l-hexyl-3-methylimidazolium chloride enhances the heating rate of CdSe precursors in hexadacylamine and the rate of formation of the nanoparticles.
Dielectric heating of nonpolar molecules is not only common to inorganic materials synthesis, but it is a common theme in organic synthetic chemistry. Heating large volumes of benzene, toluene or hexane for industrialization of pharmaceuticals has generated research for heating non-polar matrices. The ability of ionic liquids to convert electromagnetic energy to heat has led to growing research on the discovery of new ionic liquids and their structure in solution. A series of available ILs can be found in existing compendiums of organic compounds. In general ionic liquids composed of the cation families: imidazolium, phosphonium, pyridinium, ammonium, sulfonium, piciolinium, thiazolium, oxazolium, pyrazolium, selenolium, teluronium, and their family of substituted species are utilized to control the reaction. The choice of the IL is dependent on the desire to apply microscopic reaction control at the nanoparticle surface (passivation) or at the constituent and/or growing nanoparticle reactivity's (microscopic heating). Lewis acidity and bascity which are involved in constituent reactivity and surface passivation of a growing nanoparticle is tunable by counterion selction. A strong Lewis base increases passivant-like behavior, while a sterically hindered, i.e., tetra- alkyl ammonium salt, increases microscopic temperatures. The choice of the counterion can be as simple as a halide or slightly more sophisticated like long chain derivatized sulfates or phosphates. In this experiment, the use of a simple ionic liquid l-hexyl-3-methyimidazolium chloride is shown to greatly enhance the heating rate of hexadecylamine and the formation rate of CdSe nanoparticles. It does not work for the III- V class, namely InP.
The heating rate for pure alkyl amine solvents like 1-aminooctane, 1- aminododecane, and 1-aminohexadecane are comparable to non-polar alkanes due to the similar dielectric constants. Upon addition of the ionic liquid l-hexyl-3- methylimidazolium chloride, the heating rate of the solution increases dramatically due to the large microwave cross section for ionic liquids. The effect of the ionic liquid to rapidly heat the bulk solution can be traced back to their selective ability to couple with the microwaves and efficiently convert electromagnetic energy into heat. The effect of the higher heating rate in the presence of the ionic liquids will increase the microscopic reaction temperatures at the forming nanoparticles is critical for overcoming activation barriers during the growth phase for the II- VI materials. 14. III-V Semiconductor Nanoparticles
The present invention also provides highly luminescent III-V semiconductor nanoparticles and the method of preparing thereof. Much attention has been paid to III-V semiconductor nanoparticles because of quantum size effects of the materials, they are possible candidate for flexible processing chemistry, and they exhibit lower toxicity than II- VI semiconductor nanoparticles. However, it has been reported that the quantum efficiency of III-V semiconductor nanoparticles is 36% at a maximum even after treatment of fluorine compounds [26]. As a result, there is a strong interest on highly luminescent III-V semiconductor nanoparticles and the preparation method. The nanoparticles disclosed herein are composed of a combination of group III metals (or group 13 elements, for example, Al, Ga, In) and group V elements (or group 15 elements, for example, N, P, As, Sb) and exhibit photoluminescence quantum efficiency of 40% or more. Preferably the nanoparticles disclosed herein are composed of more than 2 kinds of group III metals and one kind of group V elements and exhibit photoluminescence quantum efficiency of 40% or more. More preferably the composition of the III-V semiconductor nanoparticles disclosed herein is described as In(1-x)GaxP, and exhibit photoluminescence quantum efficiency of 40% or more. The range of x is 0 < x < 0.2, preferably 0.01 < x < 0.15, and more preferably 0.02 < x < 0.10 for higher quantum efficiency. The quantum efficiency described above is preferably 45% or more, and more preferably 50% or more. From a practical point of view, the lower the quantum efficiency is, the more excitation light intensity is needed to obtain enough emission light intensity from the nanoparticles.
The preferable average diameter and the size distribution of the nanoparticles stated in this section are the same as those described in Section 5. The nanoparticles stated in this section are prepared according to the methods disclosed in this invention. 15. Etching of Nanoparticles and Estimation of Quantum Efficiency of Nanoparticles.
In order to enhance photoluminescence quantum efficiency of nanoparticles, several techniques are applied such as etching with fluoride compound, shell formation for as-prepared nanoparticles described in Section 7, nanoparticle synthesis with microwave heating, nanoparticle surface capping with a certain type of organic compounds and so on. Etching with fluoride compounds is commonly used to enhance the quantum efficiency of III- V semiconductor nanoparticles. The etching is carried out by adding a solution that contains fluoride ions into a solution that contains nanoparticles under stirring with irradiation of UV/Vis light as described in the literature [26]. This process is also called photo-chemical etching. After adding fluoride ion solution into the nanoparticle solution, the quantum efficiency enhances as a function of time. In general, it takes more time to improve the quantum efficiency when the fluorine ions in solution are dilute. The quantum efficiency is quickly improved when the concentration of fluorine ions is increased. Fluorine compounds are exemplified as HF, NH4F, (CH3^NF, (C4Hg)4NF and so on.
Calculating quantum efficiency of nanoparticles is described as follows. A reference solution of Rhodamine 6G in ethanol is prepared. The absorbance at 450 nm is adjusted to approximately 0.1. A photoluminescence spectrum of the solution with 440 nm excitation is acquired. A solution of nanoparticles is prepared such that the absorbance at 440 nm is the same as the reference solution absorbance. The photoluminescence spectrum with the same parameters as the reference is acquired. The following equation is used to calculate the relative quantum yield:
φem = φe'm{Iir\A'I A){n ln ''\)2
where / (sample) and /' (reference) are integrated emission peak areas, A (sample) and A ' (reference) are the absorbances at the excitation wavelength, n (sample) and n ' (reference) are the refractive indices of the solvents, and φe'm is the quantum efficiency of Rhodamine 6G (0.95).
16. Examples As provided hereunder, embodiments of the present invention will be illustrated in more detail by ways of examples, although the present invention is not limited to these examples provided that the outcome is within the gist of the present invention.
With regard to the material reagents, commercially available reagents were used without purification unless otherwise stated.
Instrument setup, conditions, etc., for measurement
(1) Microwave assisted synthesis setup: a. DISCOVER system, CEM Corporation, NC, U.S.A. b. MILESTONE ETHOS system (continuous and pulsed power supply), Milestone Corporation, Monroe, CT, U.S.A.
(2) UV/Vis absorption spectroscopy: CARY 50BIO WIN UV Spectrometer.
(3) Photoluminescence spectroscopy: CARY ECLIPSE Fluorescence Spectrometer. (4) X-ray diffractometry: SCINTAG X2 powder diffractometer.
(5) Transmission electron microscopy: JEOL 2010 Transmission Electron
Microscope.
(6) X-Ray Fluorescence instruments: Oxford Instruments - ED2000: high resolution EDXRF analyzer.
General procedure
The duration of nanoparticle reactions have been optimized to 15 minutes at a maximum temperature of 280°C. It is shown that under the influence of microwave radiation, the crystallinity becomes dependant on the power of the radiation in concert with the temperature of the reaction. The microwave reactor allows the precursors to be prepared at or near room temperature (RT) and loaded into a reaction vessel prior to its introduction into an RT chamber of the microwave reactor. The reaction vessel is then heated to temperatures between 200°C and 300°C with active cooling. The microwave reactor operates at 2.45 GHz and can be adapted to a continuous flow or autosampler system. Incorporation of integrated absorption and fluorescent detectors allow the reaction stream to be continuously monitored for applications where high throughput, high volume preparation of colloidal semiconductor nanoparticles is desired. In a typical small scale synthesis (5 ml or less), the reactants are mixed in a high-pressure reaction vessel and placed in the RT chamber of the microwave reactor. The reaction is controlled by a predetermined program that controls and monitors reaction time, temperature, pressure, and microwave power (wattage) in real time. These reaction parameters control material size, purity, crystallinity, and dispersity. The synthetic protocol allows reproducible production of materials. The isolation and storage of the materials can be done directly inside the high-pressure reaction vessel, thereby eliminating the step of material transfer that potentially exposes the materials to contaminants such as oxygen and water. The Teflon liner in the chamber of the microwave reactor was re-designed from typical commercial specifications in order to tolerate high temperatures for extended periods of time. The reaction vessel comprises a 5 ml vial with a high-pressure aluminum crimp top with Teflon septa. All glassware was dried prior to use. All reagents were manipulated by standard airless techniques. In a typical large scale reaction (5 ml or greater), the reactants are placed in a standard round bottom flask (Kirmax, Pyrex or Chemglass) and placed in a RT chamber and irradiated with continuous or pulsed power with dual magnetrons until the desired temperature is reached. Example 1. Preparation of CdSe from a single source precursor
Li4[CdI0Se4(SPh)16].
It has been shown by Cumberland et al. in [7] that a novel single source precursor based upon Li4[CdioSe4(SPh)i6] in the presence of mild coordinating alkyl amine solvent can yield CdSe quantum dots in the size range of 2-9 ran with a reaction time of 720 minutes on average. Using this single source precursor in the presence of hexadecylamine (HDA) microwave irradiation yields nanoparticles in a fraction of the time.
50 g of HDA was degassed under vacuum at 110°C. 80 mg of Li4[Cd10Se4(SPh)16] was placed in the reaction vessel and sealed with a high pressure crimp cap followed by the addition of 4 ml of molten, degassed HDA (at approximately 70°C). The reaction vessel was placed in the chamber of the microwave reactor and irradiated with 300 Watts of power until it reached 230°C, at which time the power was decreased to 230 Watts. This power and temperature was held constant for 60 minutes. At 60 minutes, the power was turned off and the latent heat of the reaction vessel was quickly removed by passing compressed air across it. This produced monodisperse 4.5 nm to 5.5 ran CdSe nanoparticles. Smaller sizes can be isolated under these experimental parameters simply by quenching the reaction at shorter time intervals. Increasing the microwave power to 250 Watts for 60 minutes at 230°C can yield sizes larger than 4.5 nm, e.g., 5.5 nm, as shown in FIG. 2, wherein traces 10 and 12 represent the absorption and photoluminescence, respectively, of 4.5 nm CdSe synthesized at 23O0C and 230W, while traces 14 and 16 represent the absorption and photoluminescence, respectively, of 5.5 nm CdSe grown at 230°C and 250W. High heating rate: 30°C/min
Main constituent of the reactant (Dielectric constant): Hexadecylamine (2.71) [5] Example 2. Preparation of CdSe from a single source precursor
Li4[CdioSe4(SPh)i6] and l-hexyl-3-methylimidazolium Chloride.
The CdSe was prepared using the single source precursor Li4[CdioSe4(SPh)i6]2. A stock solution of the precursor cluster was prepared by adding 635 mg Of Li4[Cd10Se4(SPh)16] and 0.0448g of l-hexyl-3-methylimidazolium chloride to 45g of degassed 1-aminohexadecane at 90 0C. The solution was degassed under Ar, and 5 ml aliquots were injected into the microwave reaction vials prior to the reaction. A series of reaction were performed in which the applied power was increased from 160 to 400W keeping the reaction time at 3 minutes and the temperature fixed at 2100C by active cooling.
An important characteristic of dielectric heating is that microscopic instantaneous temperatures can be reached with small amounts of ionic liquid. It is clear from FIG. 1 that the onset of the first exciton redshifts with increasing power. That is, the CdSe nanoparticles in the microwave can be forced to grow by increasing the microscopic temperature of the reaction. This is achieved by the addition of the ionic liquid to the reaction mixture. When the IL is present in the solution in a 1.1 mol ratio of IL to the inorganic cluster the heating rate increases from 3°C/s to 12°C/s.
Example 3. Preparation of CdSe from CdNO3 and TOP : Se. Stock solutions of Cd and Se were prepared separately. The cation solution was prepared by dissolving 435 mg of cadmium nitrate tetrahydrate in 9.6 ml of trioctylphosphine (TOP). This solution was heated to 100°C under vacuum for 30 minutes. The reaction mixture was purged with Ar three times and then cooled to room temperature for later use. The anion solution was prepared by mixing 182 mg of 200 mesh Se powder in 2.8 ml TOP The coordinating solvent, trioctyphosphine oxide (TOPO), was degassed under vacuum at HO0C three times and back filled with Ar over a two hour period . The Cd (0.5ml) and Se (0.6ml) were mixed in a teflon sealed reaction vial, and diluted with 3.9 ml molten TOPO (approximately 65°C) to make a 5 ml solution. The reaction vessel was placed in the chamber of the microwave reactor at room temperature. 300 Watts were applied for several seconds, at which time the temperature spiked from 40°C to 23O0C in 15 seconds. The power was reduced to 40 Watts to stabilize the temperature at 25O0C for 8 minutes. At 8 minutes, the power was turned off and the reaction was quenched. This resulted in a 4.6 run CdSe nanoparticle, approximated by the excitonic peak position, as shown in FIG. 3, wherein traces 18 and 20 represent the absorption and photoluminescence, respectively, of CdSe grown from cadmium nitrate and trioctylphosphineselenide. Note that nanoparticle diameter can be tuned by reaction temperature.
High heating rate: 760°C/min Main constituent of the reactant (Dielectric constant): TOPO (<20)
Ref: Dielectric constants of materials similar to TOPO [24, 25]
Temp.(°C) Dielectric Const.
Triethylphosphine oxide (C2H5)3P=O 323.2 35.5
Tributylphosphine oxide (C4H9)3P=O 323.2 26.4 Triheptylphosphine oxide (C7Hi5)3P=O 323.2 30.4
Trioctylphosphine oxide (C8Hn)3P=O <TOPO> -19 Trinonylphosphine oxide (C9H19)3P=O 323.2 15.4
Example 4. Preparation of InP from In(OAc) and P(SiMe3)3 The preparation of the stock precursor solutions was done according to literature methods, such as those in [9]. A solution of indium acetate and hexadecanoic acid was prepared in hexadecene. The mole ratio of In to hexadecanoic acid was adjusted to a 1 to 3. The salts were dissolved at 1000C to make a 15.6 mM solution in In. The solution was degassed at this temperature for 1 hour and purged with Ar three times. A stock solution of tris(trimethylsilyl) phosphine at 86.1 mM was prepared in dry hexadecene.
The In and P precursors were mixed at 500C in a 10 ml sealed reaction vessel in a 2:1 ratio to make a total volume of 5 ml precursor solution. The reaction vessel was irradiated with 300 watts of power until the solution reached a temperature of 280°C. The power was reduced to maintain 280 watts. This temperature and power was maintained for 15 minutes, at which time the reaction was rapidly quenched. High heating rate: 30°C/min
Main constituent of the reactant (Dielectric constant): Hexadecene (2.1-2.2) (Ref: Dielectric constant of 1 -tridecene is 2.139)
Ref: Dielectric constants of materials similar to hexadecane [24]
Temp.(°C) Dielectric Const.
1-Hexene C6H12 294.0 2.007
1-Heptene C7H14 293.2 2.092
1-Octene C8H16 293.2 2.113
1-Nonene CgH18 293.2 2.180
1-Decene Ci0H2O 293.2 2.136
1-Undecene Ci1H22 293.2 2.137
1-Dodecene C12H24 293.2 2.152
1 -Tridecene C13H26 293.2 2.139
Example 5. Preparation of HF etched In(i_X)GaxP nanoparticles (0<x<0.2) and its photoluminescence quantum efficiency.
In(i-x)GaxP nanoparticles (x = 0, 0.05, 0.09, 0.16) were synthesized according to procedures shown in Example 4. The concentration of both In and Ga in the cation stock solution was changed to control the Ga concentration of the nanoparticles. Ga concentration of InGaP nanoparticles was determined by either ICP-AE or X-ray fluorescence. It should be stressed that the Ga concentration is slightly changed after etching process. The samples were isolated from the reaction mixture by precipitation with acetone/methanol and redispersed in toluene. This procedure was performed two times to ensure metallic bi-products were separated from the nanoparticle solution. The optical densities of the solutions were adjusted to 0.09 at 480 nm (for QE standardization). Subsequently, 50 mg of hexadecanoic acid was mixed with 5 ml of nanoparticle/toluene solution. Finally, 3 μL of 4.8 % HF/butanol was injected into each solution. These nanoparticles were etched in ambient room light and temperature.
TABLE 1 represents relationship between Ga concentration (x) Of In(I-X)GaxP nanoparticles before etching, quantum efficiency before etching, etching time, and quantum efficiency after etching. The quantum efficiency after etching is more than 40% in case of In(i-x)GaxP (0 < x < 0.2). In case of x = 0 (InP nanoparticles), the quantum efficiency was 28% after 120 min.
Table 1
Figure imgf000031_0001
* x represents Ga concentration in In{1-x)GaxP.
Example 6. Preparation of InGaP from In(OAc), Ga (acac), and P(SiMe3)3
The stock solution was prepared by a modification of literature methods [9]. Indium III acetate (0.700 mmol), gallium III 2,4-pentanedionate (0.070 mmol) and hexadecanoic acid (2.30 mmol) were mixed with 50 ml either octadecene or hexadecene. The mixture was heated to 160°C until the solution turned clear. The temperature of the stock solution was reduced to 110°C under vacuum and purged with Ar three times.
For 4.8 run quantum dots, the cation stock solution was prepared with octadecene and mixed with tris(trimethylsilyl)phosphine in the reaction vessel via syringe at 50°C with a cation : anion mole ratio of 2:1. 5 ml of the stock solution was placed in a 10 ml sealed reactor vial (CEM). The 2.3 ran quantum dots were prepared in the same fashion, but the stock solution was prepared in hexadecene.
Reactor temperature and pressures were monitored continuously to ensure safety, with pressures not exceeding 1.7 atm during the course of the reaction. The power level of the ramp was 300 watts. The hold temperature was 280°C for 15 min., with a constant power level of 280 watts during the reaction. To ensure controlled dispersity, the reaction vessel was rapidly cooled, via a quenching Oswald Ripening process, from 2800C to 950C over a period of 2 min using compressed air. Depending on the concentration of precursors, the ramp rate to achieve the hold temperature ranged from 4 - 6 minutes with the more dilute samples taking longer, due to the heating arising from direct dielectric heating of the precursors, rather then the thermal heating of the solvent. Size control for these materials was achieved by controlling the concentration of the constituent elements in the reactant.
High heating rate: 32°C/min Main constituent of the reactant: octadecene (Dielectric constant estimated to be 2.1-2.2)
When hexadecene was used as the non-coordinating solvent, approximately 2.3 run InGaP was grown. When octadecene was used as the non-coordinating solvent, 4.8 run nanoparticles were grown. The size is determined by Scherrer broadening of the powder x-ray diffraction peaks, as shown in FIGS. 4A and 4B.
FIG. 4A illustrates the absorption and FIG. 4B illustrates the photoluminescence of InGaP nanoparticles synthesized at 2800C for 15 minutes at 280 Watts. Traces 22 and 26 represent InGaP synthesized with hexadecene (HDE) as the non-coordinating solvent, and traces 24 and 28 represent InGaP synthesized with octadecene as the non-coordinating solvent.
An important feature of the specific microwave effect on III- V ternary compound crystal growth is that the crystallinity (optical properties of the final product) is dependant on the microwave power. If the reaction time and temperature are held constant while the power is reduced, low energy defect emission begins to form, as shown in FIG. 5.
FIG. 5 illustrates the absorption and photoluminescence of InGaP showing the dependence of crystallinity on power, wherein trace 30 represents the absorption for InGaP and trace 32 represents the photoluminescence for InGaP that were synthesized with a constant power of 230 watts, while trace 34 represents the absorption for InGaP and trace 36 represents the photoluminescence for InGaP that were synthesized at a constant power of 270 watts.
The defect emission can be attributed to surface vacancies or glide plane defects. It is clear that not only high temperature is important for high quality material, but high power is needed as well. The structural characterization of the material exhibits the zinc blende structure of bulk InP.
17. Processing Steps FIG. 6 is a flowchart that illustrates the processing steps for synthesizing nanoparticles used in the preferred embodiment of the present invention. These steps are typically performed using a single reaction vessel, continuous flow reactor or stopped flow reactor.
Block 38 represents the step of preparing one or more constituent elements at or near room temperature, wherein the constituent elements include ionic liquids that enhance formation rates of the nanoparticles, and the room temperature is below 100°C. Preferably, a dielectric constant of a main one of the constituent elements is 20 or higher.
Block 40 represents the step of heating the prepared constituent elements to an elevated temperature using high-rate heating, in order to create a reaction mixture. Preferably, the heating step is performed using microwave irradiation, and the high heating rate comprises a rate of 30°C/min or higher.
Block 42 represents the step of stabilizing the reaction mixture at the elevated temperature. Preferably, the elevated temperature is greater than 240°C. Block 44 represents the step of cooling the stabilized reaction mixture to a reduced temperature using high-rate cooling. Preferably, the high cooling rate comprises a rate of 1250C /min or higher.
FIG. 7 is an illustration of the processing steps for synthesizing nanoparticles used in the preferred embodiment of the present invention. As noted above, the reactor 46 typically comprises a single reaction vessel, continuous flow reactor or stopped flow reactor. The reactant 48 includes the constituent elements, such as one or more precursors 50 and 52 that contain elements that turn into nanoparticles, passivants 54, and/or solvents 56. Arrow 58 represents the heating/cooling process that creates the nanoparticles 60. The nanoparticles' 60 growth is controlled by adjustment of kinetic and thermodynamic barriers by power, temperature, time or additive.
18. References The following references are incorporated by reference herein:
[1] R. L. Wells, S. R. Aubuchon, S. S. Kher, M. S. Lube, P. S. White, Chemistry of Materials 1995, 7, 793.
[2] O. I. Micic, C. J. Curtis, K. M. Jones, J. R. Sprague, A. J. Nozik, Journal of Physical Chemistry 1994, 98, 4966. [3] O. I. Micic, J. R. Sprague, C. J. Curtis, K. M. Jones, J. L. Machol, A. J.
Nozik, H. Giessen, B. Fluegel, G. Mohs, N. Peyghambarian, Journal of Physical Chemistry 1995, 99, 7754.
[4] A. A. Guzelian, J. E. B. Katari, A. V. Kadavanich, U. Banin, K. Hamad, E. Juban, A. P. Alivisatos, R. H. Wolters, C. C. Arnold, J. R. Heath, Journal of Physical Chemistry 1996, 100, 7212.
[5] O. I. Micic, S. P. Ahrenkiel, A. J. Nozik, Applied Physics Letters 2001, 78, 4022.
[6] Z. A. Peng, X. G. Peng, Journal of the American Chemical Society 2001, 123, 183. [7] S. L. Cumberland, K. M. Hanif, A. Javier, G. A. Khitrov, G. F. Strouse, S. M. Woessner, C. S. Yun, Chemistry of Materials 2002, 14, 1576.
[8] D. V. Talapin, A. L. Rogach, I. Mekis, S. Haubold, A. Komowski, M. Haase, H. Weller, Colloids and Surfaces a-Physicochemical and Engineering Aspects 2002, 202, 145.
[9] D. Battaglia, X. G. Peng, Nano Letters 2002, 2, 1027
[10] J. J. Li, Y. A. Wang, W. Z. Guo, J. C. Keay, T. D. Mishima, M. B. Johnson, X. G. Peng, Journal of the American Chemical Society 2003, 125, 12567.
[11] I. Mekis, D. V. Talapin, A. Kornowski, M. Haase, H. Weller, Journal of Physical Chemistry B 2003, 107, 7454.
[12] E. M. Chan, R. A. Mathies, A. P. Alivisatos, Nano Letters 2003, 3, 199.
[13] H. Z. Wang, X. Y. Li, M. Uehara, Y. Yamaguchi, H. Nakamura, M. P. Miyazaki, H. Shimizu, H. Maeda, Chemical Communications 2004, 48. [14] C C. Landry, J. Lockwood, A. R. Barron, Chemistry of Materials
1995, 7, 699.
[15] A. V. Murugan, R. S. Sonawane, B. B. Kale, S. K. Apte, A. V. Kulkarni, Materials Chemistry and Physics 2001, 71, 98.
[16] H. Grisaru, O. Palchik, A. Gedanken, V. Palchik, M. A. Slifkin, A. M. Weiss, Journal of Materials Chemistry 2002, 12, 339.
[17] J. He, X. N. Zhao, J. J. Zhu, J. Wang, Journal of Crystal Growth 2002, 240, 389.
[18] T. Ding, J. R. Zhang, S. Long, J. J. Zhu, Microelectronic Engineering 2003, 66, 46. [19] E. H. Hong, K. H. Lee, S. H. Oh, C. G. Park, Advanced Functional
Materials 2003, 13, 961.
[20] C. Gabriel, S. Gabriel, E. H. Grant, B. S. J. Halstead, D. M. P. Mingos, Chemical Society Reviews 1998, 27, 213. [21] E. T. Thostenson, T. W. Chou, Composites Part a- Applied Science and Manufacturing 1999, 30, 1055.
[22] D. A. Jones, T. P. Lelyveld, S. D. Mavrofidis, S. W. Kingman, N. J. Miles, Resources Conservation and Recycling 2002, 34, 75. [23] A. Loupy, Microwaves in organic synthesis, Wiley- VCH, Weinheim ;
Cambridge, 2002.
[24] D. R. Lide, ed., CRC Handbook of Chemistry and Physics, 76th Ed., CRC 1995 pp. 6-159.
[25] Bogovikov, U. Y., et al., Zh. Obchei Himii 1969, 40, pp. 1957-1962. [26] Talapin, D. V., et al., J. Phys. Chem. B 2002, 106, pp. 12659-12663.
17. Conclusion
This concludes the description of the preferred embodiment of the present invention. In summary, the present invention has shown that colloidal nanoparticles can be rapidly synthesized under high power microwave radiation to provide industrial scalability with no sacrifice to structural integrity or optical quality.
The foregoing description of one or more embodiments of the invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the above teaching. It is intended that the scope of the invention be limited not by this detailed description, but rather by the claims appended hereto.

Claims

WHAT IS CLAIMED IS:
1. A method for chemically synthesizing nanoparticles, comprising a heating process of a reaction system, which comprises precursors, passivants, and/or solvents in a reactor, in which a temperature of constituent elements is ramped at 30°C/min or higher.
2. The method for chemically synthesizing nanoparticles according to claim 1, wherein microwave irradiation is used for the heating process.
3. The method for chemically synthesizing nanoparticles according to claim 1 , wherein a dielectric constant of a main constituent element is 20 or lower.
4. The method for chemically synthesizing nanoparticles according to claim 1, wherein the nanoparticles are metal, semiconductor, or insulator nanoparticles.
5. The for chemically synthesizing nanoparticles according to claim 1, wherein the nanoparticles have organic or inorganic compounds attached to their surface.
6. A method for synthesizing nanoparticles, comprising: preparing one or more constituent elements at or near room temperature; heating the prepared constituent elements to an elevated temperature using high-rate heating, in order to create a reaction mixture; stabilizing the reaction mixture at the elevated temperature; and cooling the stabilized reaction mixture to a reduced temperature using high- rate cooling, so that nanoparticles are synthesized.
7. The method for synthesizing nanoparticles according to claim 6, wherein a dielectric constant of a main constituent element is 20 or lower.
8. The method for synthesizing nanoparticles according to claim 6, wherein the room temperature is below 100°C.
9. The method for synthesizing nanoparticles according to claim 6, wherein the heating step is performed using microwave irradiation.
10. The method for synthesizing nanoparticles according to claim 6, wherein the high heating rate comprises a rate of 30°C/min or higher.
11. The method for synthesizing nanoparticles according to claim 6, wherein the high cooling rate comprises a rate of 80°C/min or higher.
12. The method for synthesizing nanoparticles according to claim 6, wherein the nanoparticles' growth is controlled by adjustment of kinetic and thermodynamic barriers by power, temperature, time or additive.
13. The method for synthesizing nanoparticles according to claim 6, wherein the constituent elements include ionic liquids that enhance formation rates of the nanoparticles.
14. The method for synthesizing nanoparticles according to claim 6, wherein the nanoparticles are treated by ambient photo-chemical etching thereafter.
15. The method for synthesizing nanoparticles according to claim 14, wherein the nanoparticles comprise III-V semiconductors, and exhibit photo luminescence quantum efficiency of 40 % or more.
16. Nanoparticles grown by the method of any of the preceding claims.
17. Nanoparticles comprising III-V semiconductors, wherein the nanoparticles exhibit photoluminescence quantum efficiency of 40 % or more.
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Publication number Priority date Publication date Assignee Title
JPWO2008016154A1 (en) * 2006-07-31 2009-12-24 Hoya株式会社 Method for producing fine particles and method for producing indium organic carboxylate
JP2011505449A (en) * 2007-11-30 2011-02-24 ナノコ テクノロジーズ リミテッド Preparation of nanoparticle materials
US9251922B2 (en) 2007-11-30 2016-02-02 Nanoco Technologies, Ltd. Preparation of nanoparticle material
JP2020519670A (en) * 2017-05-18 2020-07-02 エスケー ケミカルズ カンパニー リミテッド Phosphine precursor for producing quantum dots and quantum dots produced therefrom

Families Citing this family (47)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070101824A1 (en) * 2005-06-10 2007-05-10 Board Of Trustees Of Michigan State University Method for producing compositions of nanoparticles on solid surfaces
WO2007016193A2 (en) * 2005-07-28 2007-02-08 Florida State University Research Foundation, Incorporated Nanoparticle synthesis and associated methods
ES2370519T3 (en) * 2005-08-23 2011-12-19 University Of Cape Town DOPADO OF PARTICULATED SEMICONDUCTING MATERIALS.
GB0522027D0 (en) * 2005-10-28 2005-12-07 Nanoco Technologies Ltd Controlled preparation of nanoparticle materials
US7935242B2 (en) * 2006-08-21 2011-05-03 Micron Technology, Inc. Method of selectively removing conductive material
US7892519B2 (en) * 2006-12-14 2011-02-22 Idaho State University Rapid synthesis and size control of chalcopyrite-based semi-conductor nanoparticles using microwave irradiation
US20080164141A1 (en) * 2007-01-08 2008-07-10 Mohamed Samy Sayed El-Shall Methods for making metal-containing nanoparticles of controlled size and shape
KR101430261B1 (en) * 2007-02-23 2014-08-14 삼성전자주식회사 Organosilicon Nanocluster, Method for preparing the same and Method for preparing Thin Film using the same
US8197901B2 (en) * 2007-07-16 2012-06-12 University Of Kentucky In-situ nanoparticle formation in polymer clearcoats
US8003070B2 (en) * 2008-03-13 2011-08-23 Battelle Energy Alliance, Llc Methods for forming particles from single source precursors
US8324414B2 (en) * 2009-12-23 2012-12-04 Battelle Energy Alliance, Llc Methods of forming single source precursors, methods of forming polymeric single source precursors, and single source precursors and intermediate products formed by such methods
US9371226B2 (en) 2011-02-02 2016-06-21 Battelle Energy Alliance, Llc Methods for forming particles
US8951446B2 (en) 2008-03-13 2015-02-10 Battelle Energy Alliance, Llc Hybrid particles and associated methods
KR20110015572A (en) * 2008-04-25 2011-02-16 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Process for the surface modification of particles
US8357308B1 (en) 2008-07-10 2013-01-22 Florida State University Research Foundation, Inc. Ion etching of growing InP nanocrystals using microwave
EP2163301A3 (en) * 2008-09-11 2010-04-28 Centre National De La Recherche Scientifique (Cnrs) Process for manufacturing colloidal materials, colloidal materials and their uses
US9963633B2 (en) 2008-09-11 2018-05-08 Nexdot Process for manufacturing colloidal materials, colloidal materials and their uses
WO2010083431A1 (en) * 2009-01-16 2010-07-22 University Of Utah Research Foundation Low-temperature synthesis of colloidal nanocrystals
US10290387B2 (en) * 2009-01-20 2019-05-14 University Of Utah Research Foundation Modification of colloidal nanocrystals
US20120068126A1 (en) * 2009-01-20 2012-03-22 University Of Utah Research Foundation Post-systhesis modification of colloidal nanocrystals
JP5410177B2 (en) * 2009-07-02 2014-02-05 国立大学法人北海道大学 Method for producing fluorescent cluster and fluorescent emission dispersion
JP5158375B2 (en) * 2009-07-27 2013-03-06 シャープ株式会社 Semiconductor nanoparticle phosphor
EP2488360A4 (en) 2009-10-14 2013-06-05 Univ California Nanocomposite and method of making thereof
US8414862B2 (en) 2009-11-25 2013-04-09 E I Du Pont De Nemours And Company Preparation of CZTS and its analogs in ionic liquids
WO2011109421A1 (en) * 2010-03-01 2011-09-09 Auburn University Novel nanocomposite for sustainability of infrastructure
US20130048922A1 (en) * 2010-05-11 2013-02-28 Ocean's King Lighting Science & Technology Co., Ltd. Method for preparing quantum dots of lead selenide
US20110088511A1 (en) * 2010-08-28 2011-04-21 Ghanavi Jalaledin Method for producing rod-shaped and branched metallic nano-structures by polyol compounds
US8871175B2 (en) 2010-10-01 2014-10-28 The Boeing Company Nanomaterial having tunable infrared absorption characteristics and associated method of manufacture
US9096432B2 (en) 2011-02-01 2015-08-04 Nanosi Advanced Technologies, Inc. Auric acid assisted silicon nanoparticle formation method
US8333945B2 (en) 2011-02-17 2012-12-18 Afton Chemical Corporation Nanoparticle additives and lubricant formulations containing the nanoparticle additives
WO2013019299A2 (en) * 2011-05-11 2013-02-07 Qd Vision, Inc. Method for processing devices including quantum dots and devices
US20140360550A1 (en) * 2011-08-11 2014-12-11 Purdue Research Foundation Nanocrystal coated flexible substrates with improved thermoelectric efficiency
US9209374B2 (en) * 2012-03-28 2015-12-08 Evident Technologies, Inc. Method for preparing and use of Sb2Te3 nanocrystals in thermoelectric materials
CN105026500B (en) * 2013-03-13 2016-08-31 松下知识产权经营株式会社 Copper composite titanium oxide dispersion liquid, coating agent composition and antibacterial/antiviral property component
US9581001B2 (en) * 2013-08-19 2017-02-28 Baker Hughes Incorporated Apparatus and methods for stimulating reservoirs using fluids containing nano/micro heat transfer elements
KR20160067143A (en) * 2013-10-04 2016-06-13 킹 압둘라 유니버시티 오브 사이언스 앤드 테크놀로지 System and method for making quantum dots
WO2015025233A1 (en) * 2013-12-24 2015-02-26 Mansoryar Mahdi Nanomaterial production machine able to separate, enrich and detect acoustic stress with high purity
US9751071B2 (en) * 2013-12-27 2017-09-05 State Of Oregon Acting By And Through The State Board Of Higher Education On Behalf Of Oregon State University Continuous microwave-assisted segmented flow reactor for high-quality nanocrystal synthesis
JP6034317B2 (en) * 2014-02-07 2016-11-30 トヨタ自動車株式会社 Method and apparatus for producing core-shell type metal nanoparticles
US11040323B2 (en) 2015-11-06 2021-06-22 The University Of Chicago Colloids of inorganic nanocrystals in molten media and related methods
EP3397588A4 (en) * 2015-12-31 2019-08-07 Dow Global Technologies, LLC Continuous flow syntheses of nanostructure materials
US11909046B2 (en) 2017-03-07 2024-02-20 The Research Foundation For The State University Of New York Synthetic methods for crystallite size control of bimetallic polyanionic battery compositions
US11173664B2 (en) 2017-04-24 2021-11-16 The Boeing Company Nanostructures for process monitoring and feedback control
US11491539B2 (en) * 2018-03-21 2022-11-08 The Florida State University Research Foundation, Inc. Multipod nanostructures and methods
US11247914B2 (en) 2018-06-26 2022-02-15 The University Of Chicago Colloidal ternary group III-V nanocrystals synthesized in molten salts
US11742151B2 (en) * 2019-05-29 2023-08-29 King Fahd University Of Petroleum And Minerals Aerosol assisted chemical vapor deposition methods useful for making dye-sensitized solar cells with platinum dialkyldithiocarbamate complexes
CN112442674A (en) * 2019-09-03 2021-03-05 Asm Ip私人控股有限公司 Method and apparatus for depositing chalcogenide films and structures including films

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040009118A1 (en) * 2002-07-15 2004-01-15 Jonathan Phillips Method for producing metal oxide nanoparticles

Family Cites Families (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5716565A (en) * 1993-09-27 1998-02-10 Alfred University Process for making ultra-fine stabilized zirconia particles
US6231980B1 (en) * 1995-02-14 2001-05-15 The Regents Of The University Of California BX CY NZ nanotubes and nanoparticles
US6096282A (en) * 1996-09-10 2000-08-01 The Regents Of The University Of California Instantaneous synthesis of refractory nitrides from solid precursors
US6607706B1 (en) * 1998-11-09 2003-08-19 Nanogram Corporation Composite metal oxide particles
US6506493B1 (en) * 1998-11-09 2003-01-14 Nanogram Corporation Metal oxide particles
US6136287A (en) * 1998-11-09 2000-10-24 Nanogram Corporation Lithium manganese oxides and batteries
US6207844B1 (en) * 1999-05-12 2001-03-27 Arizona Board Of Regents Compounds and methods for depositing pure thin films of gallium nitride semiconductor
US6752979B1 (en) * 2000-11-21 2004-06-22 Very Small Particle Company Pty Ltd Production of metal oxide particles with nano-sized grains
US6576291B2 (en) * 2000-12-08 2003-06-10 Massachusetts Institute Of Technology Preparation of nanocrystallites
US7056471B1 (en) * 2002-12-16 2006-06-06 Agency For Science Technology & Research Ternary and quarternary nanocrystals, processes for their production and uses thereof
JP2005105244A (en) * 2003-01-24 2005-04-21 National Institute Of Advanced Industrial & Technology Semiconductor ultrafine particle and fluorescent substance
JP2007534609A (en) * 2004-04-27 2007-11-29 アリゾナ ボード オブ リージェンツ Method for synthesizing highly luminescent doped metal nitride powders

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040009118A1 (en) * 2002-07-15 2004-01-15 Jonathan Phillips Method for producing metal oxide nanoparticles

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPWO2008016154A1 (en) * 2006-07-31 2009-12-24 Hoya株式会社 Method for producing fine particles and method for producing indium organic carboxylate
JP2011505449A (en) * 2007-11-30 2011-02-24 ナノコ テクノロジーズ リミテッド Preparation of nanoparticle materials
US9251922B2 (en) 2007-11-30 2016-02-02 Nanoco Technologies, Ltd. Preparation of nanoparticle material
JP2020519670A (en) * 2017-05-18 2020-07-02 エスケー ケミカルズ カンパニー リミテッド Phosphine precursor for producing quantum dots and quantum dots produced therefrom

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