CA2263859C - Electrochemical detector integrated on microfabricated capillary electrophoresis chips - Google Patents

Electrochemical detector integrated on microfabricated capillary electrophoresis chips Download PDF

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CA2263859C
CA2263859C CA002263859A CA2263859A CA2263859C CA 2263859 C CA2263859 C CA 2263859C CA 002263859 A CA002263859 A CA 002263859A CA 2263859 A CA2263859 A CA 2263859A CA 2263859 C CA2263859 C CA 2263859C
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channel
thin film
working electrode
capillary electrophoresis
electrode
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CA2263859A1 (en
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Richard A. Mathies
Alexander N. Glazer
Kaiqin Lao
Adam T. Woolley
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University of California
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N27/00Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
    • G01N27/26Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
    • G01N27/416Systems
    • G01N27/447Systems using electrophoresis
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N27/00Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
    • G01N27/26Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
    • G01N27/416Systems
    • G01N27/447Systems using electrophoresis
    • G01N27/44704Details; Accessories
    • G01N27/44717Arrangements for investigating the separated zones, e.g. localising zones
    • G01N27/4473Arrangements for investigating the separated zones, e.g. localising zones by electric means
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N27/00Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
    • G01N27/26Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
    • G01N27/416Systems
    • G01N27/447Systems using electrophoresis
    • G01N27/44756Apparatus specially adapted therefor
    • G01N27/44791Microapparatus
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N30/00Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
    • G01N30/02Column chromatography
    • G01N30/60Construction of the column
    • G01N30/6095Micromachined or nanomachined, e.g. micro- or nanosize

Abstract

A microfabricated capillary electrophoresis chip which includes an integral thin film electrochemical detector for detecting molecules separated in the capillary.

Description

ELECTROCHEMICAL DETECTOR INTEGRATED ON MICROFABRICATED
CAPILLARY ELECTROPHORESIS CHIPS
Brief Description of the Invention This invention relates generally to an electrochemical detector as a component of an integrated separation and detection module on a microfabricated capillary electrophoresis chip and to a method of fabricating the electrochemical detector and mare particularly to the design of a thin film electrochemical detector which can be precisely positioned in a microfabricated capillary.
Back round of the Invention __-...
Electrochemical detection has been employed in liquid chromatography and in capillary electrophoresis (CE).
It has been demonstrated that electrochemical detection is very sensitive and can measure 10-16 to 10-1f moles of sample with typical detection volumes from nL~ to pL (Ewing, A.G.; Mesaros, J. M.; Gavin, P. F., Electrochemical Detection in Microcolumn Separations, Anal. Chem., 66, 527A-536A, (1994); Voegel, P. D.; Baldwin, R. P., Electrochemical Detection with Copper Electrodes in Liquid Chromatography and Capillary Electrophoresis, Amerir_an Laboratory, 28(2), 39-45, (1996)). Electrochemical methods have also been used to detect DNA (Shigenaga, M. K.; Park, J.-W.; Cundy, K. C.;
Gimeno, C. J.; Ames, B. N., In Vivo Oxidative DNA Damage:
Measurement of 8-hydroxy-2'-deoxyguanosine in DNA and Urine by High-Performance Liquid Chromatography with Electrochemical Detection, Methods in Enzymol., 186, 521-530, (1990); Takenaka, .3.; Uto, H.; Knodo, H.; Ihara, T.;
'rakagi, M., Electrochemically Active DNA Probes-Detection of 1a Target DNA Sequences ate Femtomole Level by High-Performance Liquid Chromatography with Electrochemical Detection, Anal.
Biochem., 218, 436-443, (1994); Johnston, D.H.; Glasglow, D.C.; Thorp, H.H., Electrochemical Measurement of the Solvent Accessibility of Nucleobases Using Electron Transfer Between DNA and Metal Complexes, J. Am. Chem. Soc. , 117 , 8933-8938, (1995)), single cells (Olefirowicz, T. M.; Ewing, A. G., Capillary Electrophoresis in 2 and 5 ,uM Diameter Capillaries: Application to Cytoplasmic Analysis, Anal. Chem., 62, 1872-1876, (1990); Pihel, K.; Hsieh, S.; Jorgenson, J. W.;
Wightman, R. M., Electrochemical Detection of Histamine and 5-Hydroxytryptamine at Isolated Mast Cells, Anal. Chem. , 67, 4514-4521, ( 1995)), and even single molecules (Fan, F.-R. F.; Bard, A. J., Electrochemical Detection of Single Molecules, Science, 267, 871-874, (1995)). The operation of these electrochemical detectors is typically based on the use of three electrodes called the working, counter, and reference electrodes.
There are three configurations which have been used to detect CE separations:
on-column (Huang, X.; Pang, T.-K. J.; Gordon, M. J.; Zare, R. N., On-Column Conductivity Detector for Capillary Zone Electrophoresis, Anal. Chem., 59, 2747-2749, (1987), where the electrodes of the detector are placed within the capillary; end-column (Huang, X.;
Zare, R. N.; 5loss, S.; Ewing, A. G., End-Column Detection for Capillary Zone Electrophoresis, Anal. Chem., 63, 189-192, (1991); Chen, M.-C.; Huang, H.-J., An Electrochemical Cell for End-Column Amperometric Detection in Capillary Electrophoresis, Anal. Chem., 67, 4010-4014, (1995)), where the electrodes are placed directly at the end of the separation capillary; and off column (Olefirowicz, T. M. ; Ewing , A. G., Capillary Electrophoresis in 2 and 5 ~,M Diameter Capillaries:
Application to Cytoplasmic Analysis, Anal. Chem., 62, 1872-1876, (1990); O'Shea, T. J.;
Greenhagen, R. D.; Lunte, S. M.; Lunte, C. E.; Smyth, M. R.; Radzik, D. M.; Watanabe, N., Capillary Electrophoresis with Electrochemical Detection Employing an On-Column NaflonJoint, J. Chromatogr., 593, 305-312, (1992); Wu, D.; Regnier, F. E.;
Linhares, M.C., Electrophoretically Mediated Micro-Assay of Alkaline Phosphatase using Electrochemical and Spectrophotometric Detection in Capillary Electrophoresis, J.
Chromatogr. B, 657, 357-363, (1994)), where the electrodes are electrically isolated from the electrophoresis voltage by a grounded porous glass tube. On-column electrochemical detection of CE separations has been performed by fixing two platinum wires through diametrically opposed holes drilled by a laser in a capillary tube. This structure is very difficult to manufacture and align, and the placement of the detection electrodes within the high voltage region of the separation column is problematic. In this format, one is trying to detect small currents or voltages while applying many kV
to the separation column. The mechanical instability and poor definition of the electrode alignment can lead to significant electrical pickup or fluctuation in the background, making the desired signal very difficult to detect. The presence of high voltage gradients and significant electrophoretic currents in the column near the electrodes can induce stray signals. The end-column and off column detection formats are important because they minimize the influence of the electrophoresis voltage. In the end-column format, one wants to place the detection electrodes as close to the end of the electrophoresis channel as possible so the detection is performed as close to ground potential as possible. This is very difficult to do with conventional manufacturing techniques. The electrodes must be placed with micron precision at the end of the capillary. Any error in the placement will cause loss of analyte signal if the electrodes are too far from the opening or high voltage pick up if the electrodes are placed within the separation column.
Furthermore, fluctuations in electrode placement or electrode-electrode gap can cause severe fluctuations in the background signal producing noise. Typically, one must use micromanipulators and a microscope to assemble the detector. Furthermore, the engineering of the electrical isolation by connection of the separation and detection capillary tubes with a grounded porous glass tube in the off column format is rather difficult to assemble and operate, and the junction can be mechanically unstable and poorly defined. In one case, although Slater and Watt (Slater, J. M.; Watt, E. J., On-chip Microbond Array Electrochemical Detector for use in Capillary Electrophoresis Analyst, 1994, 119, 2303-2307) photolithographically fabricated electrodes on a substrate, because they did not make a fully integrated separation and detection device, they were forced to use said undesirabl a junctions to couple their detector to a conventional cylindrical capillary.
There is a need for a microfabricated capillary electrophoresis chip with integral thin film electrochemical detector and electrophoresis leads which can be easily connected to associated electrical electrophoresis and detector apparatus.
Obiects and Summary of the Invention It is a general object of the present invention to provide an electrochemical detecto r for capillary electrophoresis on a microfabricated planar glass chip that overcomes the aforementioned short comings of the prior art.
It is another- obj ect of the p:reseni~ invention to provide a microfabricat:ed capillary electrophoresis chip with a microelectrochemical detector that minimizes the effect of interference from applied electrophoresis fields.
It is another object of the present invention to provide detector electrodes which are reproducibly, accurately and conveniently placed, robust and sensitive.
It is a further object of the present invention to provide detector electrodes which are pr-ecisel~~ and stably positioned at the very end of the capillary where they are close to ground potential and thereby immune to pick up from the high electrophoresis potentials.
It is a further object of the present invention to provide a microfabricated capillary electrophoresis chip with integrated thin film electrochemical detector electrodes and electrophoresis electrodes which. can be produced accurately and at low cost.
The foregoing and other objects of the invention are achieved by integrating an electrochemical detector on a microfabricated capillary electrophoresis chip of the type including a substrate having at least an elongated separation channel and a cover plate bonded to said substrate to form with said channel a separation capillary.
A thin film electrochemical detector is fabricated on the surface of said substrate or caver plate with thin narrow electrodes extending into said channel near one end of said channel.
According to one aspect the invention provides in a microfabricated capil:Lary electrophoresis chip including a substrate with an elongated separation channel with 4a conductive means at each end of the channel for applying a separation voltage along the channel, the improvement comprising an integrated electrochemical detector having a thin film working electrode extending into said separation channel at or near the very end of said separation channel where the working electrode is close to ground potential and has minimal influence from the high electrophoresis potentials, in order to detect current genersited by molecules undergoing redox reaction as they migrate past the thin film electrode after they have migrated the length of the channel, the portion of said thin film electrode extending into said channel being very narrow to minimize the electrophoresis voltage gradient which it. senses, and a reference electrode spaced from said working electrode.
According to another aspect the invention provides a microfabricated capillary electrophoresis chip including a substrate with an elongated separation channel and a cover plate mounted on said substrate to form, with. said channel, a separation capillary comprising: thin film conductive means at each end of said capillary for applying a separation voltage along said capillary, and an electrochemical detector having a thin film working electrode near the very end of said charnel where the working electrode is close to ground potential and has minimal influence from the high electrophoresis potentials, wherein the thin film working electrode i.s adapted to detect molecules undergoing redox reaction as they migrate past the thin film electrode, the portion of said thin film working electrode extending into said channel being narrow and near the end of said capillary to minimize the separation voltage gradient which it senses, and a reference electrode spaced from said working electrode.

4b According to yet another aspect the invention provides a microfabricated capillary electrophoresis chip including an etched glass substrate with an elongated separation channel and an injection channel and a cover plate mounted on said substrate to form, with said channels a separation and injection capillary comprising: thin film leads extending from the same edge of said chip to connect to the ends of the separation and injection channels, an integrated electrochemical detector hav_Lng a thin film working electrode exter:.ding from said one edge into said separation channel at or near the very end of: said channel where the working electrode is close to ground potential and has minimal influence from the high electrophoresis potentials, in order tc detect current c~enerate~d by molecules undergoing redox reaction as they migrate past the thin film electrode after they have migrated the length of the channels, the portion of said thin film electrode extending into said channel being narrow to minimize the electrophoresis voltage gradient which it senses, and a reference electrode spaced from said working electrode.
According to still another aspect the invention provides in a microfabricated capillary electrophoresis chip including a substrate with an elongated separation channel with conductive means at each end of the channel for applying a separation voltage along the channel, the improvement comprising an integrated electrochemical detector having at least one thin film working electrode extending into said separation channel at or very near one end of said separation channel adapted to detect molecules as they migrate past the thin film electrode after they have migrated down the channel, a portion of the thin film 'working electrode extending into said channel being very :narrow in the direction of the separation electric field to 4c minimize the effect of the electrophoresis voltage gradient which it senses along the channel and a reference electrode spaced 1-2000 ~.m from t:he thin film working electrode.
Brief Description of the I7rawir~s The foregoing and other objects of the present invention will be more clearly understood from the following description when read i.n conjunction with the accompanying drawings, of which:
Figure 1 shows a microfabricated capillary electrophoresis chip in accordance with the prior art;
Figure 2 is a sectional view taken along the line 2-2 of Figure 1;
Figure 3 is a perspective view of a.
microfabricated capillary electrophoresis chip incorporating the present invention;
Figure 4 is an enlarged view of the indicated detector region 4-4 of Figure 3;
Figure 5 is a sectional view taken along the line 5-5 of Figure 4;
Figure 6 is a sectional view taken along the line 6-6 of Figure 5;
Figure 7 is a sectional view showing another embodiment of the electrochemical electrodes shown in Figures 3 and 4;

Figure 8 is a sectional view taken along the line 8-8 of Figure 7;
Figure 9 is a sectional view taken along the line 9-9 of Figure 7;
Figure 10 is an enlarged view of another detector embodiment;
Figure 11 is an electropherogram of norepinephrine and epinephrine separated 5 on a capillary electrophoresis chip with integrated electrochemical detection;
Figures 12A-12C are electropherograms of norepinephrine separations obtained with a capillary electrophoresis chip with integrated electrochemical detection for three consecutive experiments;
Figures 13A-13B are perspective views of a microfabricated capillary electrophoresis chip with integrated electrochemical detection including thin film connections to the separation and injection channels;
Figure 14 is an enlarged view of the section 14-14 of Figure 13B;
Figure 15 is a perspective view of a substrate including an integrated electrochemical detector and leads connected to the injection and separation channels;
Figure 16 is a sectional view taken along the lines 16-16 of Figure 15;
Figure I7 is an enlarged view taken along the direction of arrow 17 of Figure 16;
Figure 18 is a partial enlarged view showing a plurality of electrochemical detectio n electrodes formed along the separation channel;
Figure 19 is a block diagram of an apparatus for joining a capillary electrophoresis chip into an overall electrochemical separation and analysis system in accordance with the present invention.
Figure 20 is a plan view of a microfabricated fabricated capillary electrophoresis chip in accordance with another embodiment of the present invention.
Figure 21 is an enlarged view of the area 21-21 of Figure 20 showing the detectio n electrode and reference electrode.
Figure 22 and 23 show the effect of the separation distance between the working electrode and the reference electrode.
Figure 24 shows capillary electrophoresis separations and detection of neurotransmitters.
Figure 25 shows the separation and detection of DNA in a chip using indirect electrochemical detection. .

Description of Preferred Embodiments Figures 1 and 2 show a microfabricated capillary electrophoresis (CE) chip formed in accordance with the prior art. The capillary channels are formed on an etched glass substrate 11 by photolithography and chemical etching. The process is described by Woolley et al., Ultra-High-Speed DNA Fragment Separations Using Microfabricated Capillary Array Electrophoresis Chips, Proc. Nat'1. Acad. Sci., USA, 91, 11348-(1994). The separation channel 12 and the injection channel 13 for injecting sample into the channel by stack or plug injection are described in the above reference.
In one example, all channels were etched to a depth of 8 ~,m; the separation channels were 100 ~,m wide, and the injection channels were 50 ~,m wide. The separation channels were 46 mm long, with a distance of 39 mm from the point of injection to the electrochemical detector. The injection channels were 22 mm long with a distance of 12 mm from the point of sample introduction to the injection region. A top plate 14 was bonded to the etched glass substrate to form the capillaries which are filled with a separation matrix.
The top plate includes drilled holes 1-4 which provide reagent reservoirs to the ends of the separation channel and the ends of the injection channel.
In the prior art, the electrophoretic DNA separations in the microfabricated capillary channels were detected by bulky, inconvenient and costly systems employing external lasers, optical systems, photomultiplier tubes, etc. It has thus far not been possible to integrate the optical detection system onto a microfabricated CE
chip.
Similarly, although electrochemical detection of conventional capillary electrophoresis separations performed in hollow silica capillaries has been performed with a variety of external electrode and detector formats, such a detector has never been integrated within a CE electrophoresis chip system with a single microfabrication technology.
In accordance with one embodiment of the present invention, platinum electrodes for electrochemical detectors are fabricated on the substrate or top plate by RF sputtering and photolithography before the top or cover plate is bonded to the etched substrate.
The electrodes can be accurately positioned at the ends of the separation col umn where they are close to ground potential thereby providing a stable, easy to manufacture, inexpensive electrochemical detector. Other suitable electrode materials are gold, chromium, carbon and other relatively inert easily deposited conductive materials.
Referring to Figures 3-6, a CE chip is shown with thin film platinum electrodes .
The electrodes comprise a reference electrode 21, a working electrode 22, and a counter electrode 23 (not shown) connected to an external circuit by thin film conductors 21a, 22a and 23a. The substrate is preferably etched so that the electrodes and thin film conductors are inset as shown in Figure 6 whereby the top plate 14 can be effectively sealed to the substrate. The reference and working electrodes include a narrow portion extending into the channel with the ends separated and adapted to detect current or voltag a as molecules undergo redox reactions or conduct current as they migrate past the spaced electrodes. The electrodes are connected to wider thin film leads 21a, 22a and 23a which extend to the edge of the chip for insertion into a connector (not shown) to provide electrical connection to the electrical measuring circuits. In order to limit the exposed area of the narrow portions of the working and reference electrodes which extend into the channel, the electrodes can be covered with an insulating dielectric film such as Si02.
This is illustrated in Figures 7-9 where the electrodes 21 and 22 are covered by an insulating film 24. In one example, the Pt electrodes were deposited using RF
sputtering;
the thickness of the electrodes was 3000 A. The working and reference electrodes were ~,m wide Pt electrodes that were precisely aligned on opposite sides of the channel (to minimize the potential difference between electrodes) and extended 40 ,um into the channel, with a spacing of 20 ~,m (see Figure 4). The 100 ~,m channel widens to 1000 20 ~.m at the end to increase the volume of the separation channel. The working and reference electrodes were placed 20 ~,m from the point of widening. The counter electrode was 2 mm wide and extended into the widened portion at the end of channel. The advantage of this design is that it minimizes the influence of the electrophoresis voltage by working very close (20 ~,m) to the ground end of the channel where the analyte is still highly concentrated, while still performing on-column detection. After careful alignment, the etched bottom plate or substrate 11 with the Pt electrodes was thermally bonded to a top glass plate 14 with 0.8 mm holes 1-4. The detector electrodes can also be formed adjacent the end of the channel as shown in Figure 10. The detector electrode s 21 b and 22b are covered by an insulating film 25 with ~e ends exposed.
Although specifi c dimensions have been given for the described embodiment, the channel width and depth can be between 1 - 2000 ~cm, the electrode width 1 - 2000 ,um and the electrode spacing 1 - 5000 ~cm but preferably the channel width and depth is between 1 - 500 ,um, the electrode width is 1 - 500 ~cm, and the electrode spacing is between 1 - S00 ,um.
The advantages of such fabrication and design are that {i) the working and reference electrodes can be easily and precisely positioned near, at, or just beyond the opening of the separation channel where pickup and interference from the electrophoresis voltage is minimal and where the analyte concentration in the separated zone is still high. This precise (micron) alignment is only possible with an integrated microfabricated device.
(ii) The electrodes in the channel are very small in the electrophoresis dimension. This is advantageous because it facilitates the placement of multiple electrodes, Figure 18, at essentially (compared to the zone size) the same point in the channel. It is also advantageous because we have observed that wider electrodes tend to nucleate electrolysis bubbles presumably because they sample more of the electrophoretic voltage gradient.
This effect can be reduced by covering the body of the electrode (not the tip) with an insulating layer. Such thin electrodes can only be produced via photolithography on an integrated device. Finally, one wants to have a precise and small electrode gap so that each detector functions the same and has a similar sensitivity and probed volume. The ability to fabricate a small gap will produce low backgrounds because the effective volume of conductive and capacitive solution between the electrode is small. The ability to make detectors with small gaps is also advantageous because it permits the fabrication and detection of narrow separation channels which require only small amounts of sample and which have very high electrophoretic resolution.
It is noted that the channel widens at the end just past or at the point of detection .
This is important because it keeps the first zones in the separation from raising the background as a result of diffusion of analyte back into the detector zone. By having a larger channel beyond the detector to provide a greater volume, the early zones are effectively diluted by the large solution volume around the counter electrode thereby keeping them from raising the background for the detection of subsequent bands. The wide section also has a low resistance because of its large cross section.
This means that the voltage drop from the detector to the counter electrode will be much smaller thereby further reducing stray voltages at the detector and pickup and background. It will be appreciated that in addition to widening the channel to provide a greater volume, the depth may be increased.
Capillary zone electrophoresis separation of two neurotransmitters, epinephrine and norepinephrine was performed using a CE microchip having the dimensions given in the above examples following in general the methods outlined in WoolIey et al ~Woolley, A. T.; Mathies, R. A., Ultra-High-Speed DNA Fragment Separations Using Microfabricated Capillary Array Electrophoresis Chips, Proc. Nat'I. Acad.
Sci., USA, 91, 11348-11352, (1994); Woolley, A. T.; Mathies, R. A., Ultra-High-Speed DNA
Sequencing Using Capillary Electrophoresis Chips, Anal. Chem., 67, 3676-3680, (1995)).
A 30 mM solution of 2-(N-morpholino) ethanesulfonic acid (MES) adjusted to pH
5.6 with NaOH and modified with 20 % (v/v) 2-propanol was used as the buffer.
Stock solutions (10 ~cM) of epinephrine and norepinephrine (Sigma, St. Louis) were prepared in 0 .O1 M perchloric acid. Samples were serially diluted to the desired concentration in MES buffer. After placing the sample in reservoir 3, the samples were injected by applying 90 V/cm between reservoirs 1 and 3 (Figure 3) for 20 seconds and the approximate injection volume was calculated as 40 pL. Separations were performed by applying 45 V/cm between reservoirs 2 and 4. The electrophoresis currents were typically 0.3 ~cA.
A Macintosh computer equipped with a National Instruments NB-MIO-16XL-18 I/O board was used to set voltages, store data and control the home-built three electrode potentiostat. The working electrode 22 was biased at +0. 5 V relative to the reference electrode 21; the counter electrode 23 was used to complete the circuit. The potentiostat measured the current generated by molecules undergoing redox reactions as they migrated past the gap between the reference and working electrodes. Small currents ( <
1 pA could be detected even in the presence of the larger DC electrophoresis current (0.3 ~,A) in the channels. Alternatively, the small currents could be detected by biasing the working electrode with an AC potential (Smith, D. E.; Reinmuth, W. H., Second Harmonic Alternating Current Polarography with a Reversible Electrode Process, Anal.
Chem., 33, 482-485, (1961)). A lock-in amplifier could then be used to distinguish the signal from the DC electrophoresis current. Prior to experiments, the electrodes were cleaned using 1M HZS04 with a sine wave potential (VIP = O.SV) applied to the electrodes for 20 minutes.
Figure 11 shows the separation of two neurotransmitters, epinephrine and norepinephrine, performed on the microfabricated CE chip with integrated electrochemical detection. Norepinephrine and epinephrine were detected at 2.6 min and 3.4 min, respectively, and the peaks were baseline resolved. The separation time was short, approximately 3 minutes.
Figures 12A-12C present the injection and detection of 0.48 nM epinephrine in 5 three consecutive times. The reproducibility of migration times for these runs is excellent.
The reproducibility of the signal strength is within a factor of 1.5, and most of the variability can be attributed to tailing from the later injections.
In addition to the use of thin film detection electrodes, thin film connections can be made from the edge of the chip to the ends of the separation and i njection channels, 10 12 and 13. This would then permit insertion of the chip 30 into the socket 31, (Figure 19,) which provides electrical connection to electrophoresis and detection electronics 32, for example, a processor of the type described above. The processor can be used to control stack or plug injection of sample into the separation channel and to apply electrophoresis voltages to the separation channel. Furthermore, the processor can apply voltages to the detector and analyze redox currents to provide a display or printout 33.
Referring to Figures 13 and 14, thin film leads 36, 37, and 38 are shown connected to the ends of the injection channel and to one end of the separation channel or column .
A thin film connection 40 to the other end of the channel is also shown. The thin film leads terminate at the edge 39 of the substrate. The thin film leads are carefully place d in all the reservoirs so that they are far from the end of the channels so that hydrolysis bubbles due to current flow at the lead do not enter the adjacent channel.
This is illustrated in Figure 14 for one end of the injection channel. The chip can then be inserted into the socket for carrying out sample analysis. After the thin film leads are formed by photolithography and sputtering, the cover 14 is bonded to the substrate spaced from the end so that the leads can be contacted.
In another example, thin film leads 36a, 37a, 38a and 40a can be formed at the bottom of the substrate, Figures 15-17 with lead through connections 41 to the bottom of the etched channels and spaced from the ends of the channel.
Discrimination between species with different half cell potentials can be achieved by sweeping over different bias voltages at the working electrode or by using multiple pairs of working and reference electrodes 21-l, 21-2 and 21-3, and 22-1, 22-2 and 22-3 at multiple bias voltages as.shown in Figure 18.
The design of another capillary electrophoresis (CE) chips with integrated electrochemical detection is presented in Figures 20 and 21. The separation channel and injection channel capillaries 46, 47 were microfabricated using standard photolithography, wet chemical etching, and thermal bonding methods. Figure 21 shows the photolithograpically defined channel pattern used to minimize the effect of the separation electric field on electrochemical detection. The separation channel widened from ~50 ~,m to 1000 ~cm just before the working electrode 49; the decreased resistance of the exit channel lowered the electric field in the detection region. A 10 ~,m wide thin film working electrode 49 had dual thin film leads 51 formed on the surface of the substrate and extending down the edge of the exit channel to connect to the ends of the electrode 49. The electrode was spaced 30 ~,m into the 1 mm wide exit channel.
Microfabrication technology is particularly advantageous for this chip design because it allows facile, precise and stable placement of the working electrode 49 in the exit channel just beyond the end of the separation channel. As explained with respect to the IS embodiment of Figure 10, positioning of the working electrode in the exit channel decouples the detector from the electrophoresis voltage and eliminates the problem of electrolysis in the separation channel.
A reference electrode 53 is placed in the access hole 52. It is obvious that this electrode can be a thin film electrode formed on the bottom or top of the exit channel.
The spacing between the working electrode 49 and the acce ss hole 52 has a substantial effect on the performance of the integrated electrochemical detector. Figures 22 and 23 show the effect of the distance from the access hole to the working electrode on separations. In Figure 22 the edge of the access hole was 600 ~,m from the working electrode and electrophoretic separations of 1 mM dopamine at 300, 350, 400 and 450 V are shown. Injection (90 seconds) was performed by applying -120 V to the injection waste reservoir while maintaining all other reservoirs at ground potential.
Separation occurred when the separation voltage (VS) was applied to the high-voltage reservoir, 0.75 VS was applied to the sample and injection waste reservoirs, and the detection reservoir was maintained at ground. Samples were dissolved in the separation buffer (25 mM 2-(N-morpholino)ethanesulfonic acid, 1 mM CI-, pH 5.7). Detection was at +800 mV
vs.
the reference electrode. In Figure 23 the access hole edge was 300 ~,m from the working electrode and electrophoretic separations of 1 mM dopamine at 600, 800, 1000 and 1200 V are shown. Injection and separation conditions were the same as described above.
In Figure 22 where the spacing was 600 ~,m, the separation voltage {V~
produced more interference than in Figure 23 where the spacing was only 300 ~,m.
Separations of dopamine at 300 V (60 V/cm) in the chip with a 600 ~,m spacing exhibited a flat baseline. Increasing VS in 50 V increments to 450 V (90 V/cm) resulted in decreased signal and a sloping baseline. For chips with the 300 ~.m hole-to-electrode spacing, the effect of VS was much less pronounced, permitting faster separations at higher SV , increasing VS in 200 V increments resulted in only minor changes in the signal and baseline slope until VS reached 1200 V (240 V/cm). This effect of VS on the detection background is probably due to the difference between the potential in the buffer above the working electrode (determined by VS) and the potential set at the working electrode by the potentiostat. Based on these results, we used a chip with 300 ~,m hole-to-electrod a spacing and VS = 800 V for subsequent experiments.
To characterize these devices, we first performed capillary zone electrophoresis separations (VS = 800 V) and detection of neurotransmitters in a microfabricated CE
chip with integrated electrochemical detection with the same conditions as in Figure 23 .
The results are shown in Figure 24 where the curves represent the following separations A. Separation of 1 mM dopamine; B. Separation of 1 mM epinephrine; C.
Separation of 1 mM catechol; and D. Separation of 330 ~,M dopamine (1), epinephrine (2), and catechol (3). Figure E shows peak height in separations as a function of injected concentration of dopamine (0), epinephrine (~) and catechol (D). Points on the plot represent the mean signal obtained in 3 duplicate separations. Analyses were carried out in uncoated channels to enable electroosmotic flow.
The numbers of theoretical plates in this separation were 21000, 17000 and for dopamine, epinephrine and catechol, respectively. The signal from each of the three components as a function of concentration was linear in the range from 10 to 1000 ~,M , as shown in Figure 24E. Using the standard deviation of the signal (1.5 pA) from 55-70 seconds in a blank run, we determined limits of detection (signal-to-noise=2) of 3.7 ~,M
for dopamine, 6.5 ~cM for epinephrine and 12 ~.M for catechol. The limit of detection of dopamine on-column, based on an estimated 18 pL injection volume was 66 attomoles, well within the expected range for electrochemical detection in CE.
The general applicability of these CE chips can be enhanced by developing electrochemically active labels and detecting other biomolecules. As a first s tep in this direction we have developed methods for separation and detection of DNA in microfabricated CE chips using an indirect electrochemical detection approach (F. Foret and P. Bocek, Adv. Electrophoresis 3, 273 (1989)) with the electrochemically active intercalationreagent,Fe(phen)32+(phen=1,10-phenanthroline).
Theconstantbackground current from free Fe(phen)32+ in the separation buffer decreases when DNA-Fe(phen~2+
complexes migrate through the detection region, so the passage of DNA is indicated by transient dips in the background current.
Figure 25A shows separation of a X174 HaeIII restriction digest (1 ng/~.L), and Figure 25B shows separation of a 1:200 dilution of a Salmonella PCR
product (shaded) and 500 pg/~L ~X 174 HaeIII restriction digest. The current axis has been inverted in Figures 25A and 25B to display the electropherograms with the peaks pointing up.
Injection (20 seconds) was performed by applying + 120 V to the injection waste reservoi r while maintaining the sample reservoir at ground and with the other two reservoirs floating. Separation was carried out by applying -800 V to the high-voltage reservoir while maintaining the detection reservoir at ground and with the other two reservoirs floating. Detection was at +800 mV vs. the reference electrode. The separation matrix contained 0.75 % hydroxyethylcellulose, 40 mM Tris-acetate, 1 mM EDTA, 1 mM Cl-, and 1 tcM Fe(phen)3a+, pH=g.3. DNA samples were prepared in 0.1 mM Tris-Cl-, 0.01 mM EDTA, pH=8.2. Channel surfaces were derivatized with linear polyacrylamide to suppress electroosmotic flow.
Figure 25B further demonstrates that these microdevices have the sensitivity and resolution to size PCR products; a 159 by amplicon from Salmonella was sized to 161 by vs. the X174 HaeIII peaks. Injection of SO ng/~,L ~hX174 HaeIII dissolved in electrophoresis buffer (under non-stacking conditions) yielded a signal of 190 pA for the 603 by band. Based on an injection volume of 125 pL calculated from our previousl y estimated injection plug length of 330 tcm, 700 fg (1.8 attomoles) of the 603 by fragment were injected; therefore, the detection limit (signal-to-noise=2) was 28 zeptomoles for this fragment. These results indicate that CE chips with integrated electrochemical detection may be used for high-sensitivity biochemical assays that are competitive with traditional fluorescence detection methods. Furthermore, the development of direct WO 98/09161 PCT/US97/1500b labeling methods and mufti-potential electrochemical detectors should enable multiplex electrochemical detection analogous to mufti-wavelength fluorescence detection.
Development of various electrochemical labels for detection of chemical and biological analytes will pave the way to a host of applications including health care diagnostics and pathogen detection. Now that complete devices can be microfabricated, by improving the layout and packaging it should even be feasible to make chemical analysis microprocessors where the detection and computer circuitry are also integrated on-chip. With these improvement, integrated microanalysis devices should be capable of probing for biological signatures in a variety of challenging locations, including even extraterrestrial environments.
It should be apparent that the various thin film detector electrodes and thin film connections to the injection and separation channel can alternatively be made on the top cover plate which is then accurately positioned with respect to the channels.
Thus, there has been provided an improved integrated electrochemical detector on a microfabricated CE chip. This opens the way to a variety of interesting and useful analytes. For example, electrochemical detection on CE chips could be used for numerous analytes which are redox active. A microfabricated chip and electrochemical detector can be used for remote analysis of hazardous substances without the need for operator intervention. This invention is an important step towards complete integration of DN A
and other analyses on microfabricated chips.

Claims (27)

CLAIMS:
1. ~In a microfabricated capillary electrophoresis chip including a substrate with an elongated separation channel with conductive means at each end of the channel for applying a separation voltage along the channel, the improvement comprising an integrated electrochemical detector having a thin film working electrode extending into said separation channel at or near the very end of said separation channel where the working electrode is close to ground potential and has minimal influence from the high electrophoresis potentials, in order to detect current generated by molecules undergoing redox reaction as they migrate past the thin film electrode after they have migrated the length of the channel, the portion of said thin film electrode extending into said channel being very narrow to minimize the electrophoresis voltage gradient which it senses, and a reference electrode spaced front said working electrode.
2. ~A microfabricated capillary electrophoresis chip as in claim 1 in which the reference electrode is a narrow thin film electrode which extends into said channel towards and spaced from side working electrode to form a detection region therebetween within the electrophoresis channel or at or just beyond the end thereof.
3. ~A microfabricated capillary electrophoresis chip as in claim 2 in which said channel is from 1-500 µm wide, said narrow ends are from 1-500 µm wide and the spacing between the narrow ends is from 1-500 µm.
4. ~A microfabricated capillary electrophoresis chip as in claim 2 including thin film leads extending from said thin film working electrode and said conductive means at each end of the separation channel to the same edge of said chip.
5. ~A microfabricated capillary electrophoresis chip as in claim 1 in which said thin film working electrode is covered with an insulating film which extends to a point near the end of the electrode.
6. ~A stre capillary electrophoresis chip as in claim 1 in which the channel at one end transitions to a larger volume portion and said thin film working electrode is placed in or near the transition to a larger volume.
7. ~A microfabricated capillary electrophoresis chip as in claim 1 including a plurality of pairs of spaced working electrodes disposed along said end of said channel to perform multiple electrochemical detection.
8. ~A microfabricated capillary electrophoresis chip including a substrate with an elongated separation channel and a cover plate mounted on said substrate to form, with said channel, a separation capillary comprising:
thin film conductive means at each end of said capillary for applying a separation voltage along said capillary, and an electrochemical detector having a thin film working electrode near the very end of said channel where the working electrode is close to ground potential and has minimal influence from the high electrophoresis potentials, wherein the thin film working electrode is adapted to detect molecules undergoing redox reaction as they migrate past the thin film electrode, the portion of said thin film working electrode extending into said channel being narrow and near the end of said capillary to minimize the separation voltage gradient which it senses, and a reference electrode spaced from said working electrode.
9. ~A microfabricated capillary electrophoresis chip as in claim 8 in which the thin film reference electrode extends into said channel towards and spaced from said working electrode to form a detection region therebetween within the capillary.
10. ~A microfabricated capillary electrophoresis chip as in claim 8 in which said thin film working electrode is covered with an insulating film which extends to a point near the end of the electrode.
11. ~A microfabricated capillary electrophoresis chip as in claim 8 in which said channel is from 1.-500 µm wide, said narrow ends are 1-500 µm wide and the spacing between the ends is from 1-500 µm.
12. ~A microfabricated capillary electrophoresis chip as in claim 8 in which the channel transitions to a larger volume channel portion and said thin film working electrode is placed less than 500 µm from the transition to a larger volume.
13. ~A microfabricated capillary electrophoresis chip as in claim 8 including a plurality of pairs of spared working electrodes disposed along said end of said capillary to perform multiple electrochemical detection.
14. ~A microfabricated capillary electrophoresis chip as in claim 8 including thin film leads extending from said thin film working electrode and said conductive means to one edge of said chip.
15. ~A microfabricated capillary electrophoresis chip including an etched glass substrate with an elongated separation channel and an injection channel and a cover plate mounted on said substrate to form, with said channels a separation and injection capillary comprising:
thin film leads extending from the same edge of said chip to connect to the ends of the separation and injection channels, an integrates electrochemical detector having a thin film working electrode extending from said one edge into said separation channel at or near the very end of said channel where the working electrode is close to ground potential and has minimal influence from the high electrophoresis potentials, in order to detect current generated by molecules undergoing redox reaction as they migrate past the thin film electrode after trey have migrated the length of the channels, the portion of said thin film electrode extending into said channel being narrow to minimize the electrophoresis voltage gradient which it senses, and a reference electrode spaced from said working electrode.
16. A microfabricated capillary electrophoresis chip as in claim 15 in which the reference electrode is a thin film electrode extending from said one edge with a narrow end extending into said channel towards and spaced from said working electrode to foam a detection region therebetween.
17. A microfabricated capillary electrophoresis chip as in claim 16 in which said channel is from 1-500 µm wide, said narrow ends are from 1-500 µm wide and the spacing between the ends is from 1-500 µm.
18. ~A microfabricated capillary electrophoresis chip as in claim 15 in which the channel transitions to a wider channel portion and said thin film electrodes are closely spaced from said channel transition.
19. ~In a microfabricated capillary electrophoresis chip including a substrate with an elongated separation channel with conductive means at each end of the channel for applying a separation voltage along the channel, the improvement comprising an integrated electrochemical detector having at least one thin film working electrode extending into said separation channel at or very near one end of said separation channel adapted to detect molecules as they migrate past the thin film electrode after they have migrated down the channel, a portion of the thin film working electrode extending into said channel being very narrow in the direction of the separation electric field to minimize the effect of the electrophoresis voltage gradient which it senses along the channel and a reference electrode spaced 1-2000 µm from the thin film working electrode.
20. A microfabricated capillary electrophoresis chip as in claim 19 in which said channel is from 1-500 µm wide and 1-500 µm deep, said narrow end of the thin film working electrode is from 1-500 µm wide and the spacing between the ends of the thin film working electrode and reference electrode is from 1-500 µm.
21. A microfabricated capillary electrophoresis chip as in claim 19 in which the channel is from 1-2000 µm wide and 1-2000 µm deep, said narrow end of the thin film working electrode is from 1-2000 µm wide.
22. A microfabricated capillary electrophoresis chip as in claim 19 in which the channel at said one end transitions to a larger volume portion and said thin film working electrode and reference electrode are placed in or near the transition to a larger volume.
23. A microfabricated capillary electrophoresis chip as in claim 19 including a plurality of pairs of spaced thin film working electrode disposed near said end of said channel to perform multiple potential electrochemical detection.
24. A microfabricated capillary electrophoresis chip as in claim 19 including thin film leads extending from said electrodes to the edge of said chip.
25. A microfabricated capillary electrophoresis chip as in claim 19 in which the channel transitions to a larger volume and said thin film working electrode is in said larger volume within 500 µm of the transition.
26. A microfabricated capillary electrophoresis chip as in claim 19 in which the channel transitions to a larger volume and said thin film working electrode is in said larger volume within 2000 µm of the transition.
27. A microfabricated capillary electrophoresis chip as in claim 19 including a plurality of spaced thin film working electrodes disposed near said end of said channel to perform multiple potential electrochemical detection.
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US08/916,557 US6045676A (en) 1996-08-26 1997-08-22 Electrochemical detector integrated on microfabricated capilliary electrophoresis chips
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Families Citing this family (81)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6641708B1 (en) 1996-01-31 2003-11-04 Board Of Regents, The University Of Texas System Method and apparatus for fractionation using conventional dielectrophoresis and field flow fractionation
US6045676A (en) * 1996-08-26 2000-04-04 The Board Of Regents Of The University Of California Electrochemical detector integrated on microfabricated capilliary electrophoresis chips
US6110354A (en) * 1996-11-01 2000-08-29 University Of Washington Microband electrode arrays
JP3394262B2 (en) 1997-02-06 2003-04-07 セラセンス、インク. Small volume in vitro analyte sensor
US6281006B1 (en) 1998-08-24 2001-08-28 Therasense, Inc. Electrochemical affinity assay
US6638716B2 (en) 1998-08-24 2003-10-28 Therasense, Inc. Rapid amperometric verification of PCR amplification of DNA
FR2783919A1 (en) * 1998-09-25 2000-03-31 Suisse Electronique Microtech Integrated optical biochemical sensor for detecting the different fluid components during fluid analysis uses wave guide and optical coupler on substrate having slotted fluid channel
US6338790B1 (en) 1998-10-08 2002-01-15 Therasense, Inc. Small volume in vitro analyte sensor with diffusible or non-leachable redox mediator
GB9822185D0 (en) 1998-10-13 1998-12-02 Zeneca Ltd Device
US6361671B1 (en) * 1999-01-11 2002-03-26 The Regents Of The University Of California Microfabricated capillary electrophoresis chip and method for simultaneously detecting multiple redox labels
WO2000054041A1 (en) * 1999-03-05 2000-09-14 Ce Resources Pte Ltd. High performance dispensing apparatus
US6682887B1 (en) 1999-04-30 2004-01-27 Aclara Biosciences, Inc. Detection using degradation of a tagged sequence
US6322980B1 (en) 1999-04-30 2001-11-27 Aclara Biosciences, Inc. Single nucleotide detection using degradation of a fluorescent sequence
US6514700B1 (en) 1999-04-30 2003-02-04 Aclara Biosciences, Inc. Nucleic acid detection using degradation of a tagged sequence
US6627400B1 (en) 1999-04-30 2003-09-30 Aclara Biosciences, Inc. Multiplexed measurement of membrane protein populations
US20040248150A1 (en) * 1999-04-02 2004-12-09 Sharat Singh Methods employing oligonucleotide-binding e-tag probes
US20030235832A1 (en) * 2000-06-21 2003-12-25 Ahmed Chenna Multiplexed analysis by chromatographic separation of molecular tags
US6673550B2 (en) 1999-04-30 2004-01-06 Aclara Biosciences, Inc. Electrophoretic tag reagents comprising fluorescent compounds
US7001725B2 (en) 1999-04-30 2006-02-21 Aclara Biosciences, Inc. Kits employing generalized target-binding e-tag probes
US7037654B2 (en) 1999-04-30 2006-05-02 Aclara Biosciences, Inc. Methods and compositions for enhancing detection in determinations employing cleavable electrophoretic tag reagents
DE19927533B4 (en) * 1999-06-16 2004-03-04 Merck Patent Gmbh Miniaturized analysis system
DE19927535B4 (en) * 1999-06-16 2004-06-17 Merck Patent Gmbh Miniaturized analysis system with device for discharging substances
US6878255B1 (en) 1999-11-05 2005-04-12 Arrowhead Center, Inc. Microfluidic devices with thick-film electrochemical detection
US7160735B2 (en) * 2000-04-28 2007-01-09 Monogram Biosciences, Inc. Tagged microparticle compositions and methods
US7771929B2 (en) * 2000-04-28 2010-08-10 Monogram Biosciences, Inc. Tag library compounds, compositions, kits and methods of use
US20040067498A1 (en) * 2000-04-28 2004-04-08 Ahmed Chenna Detection of nucleic acid sequences by cleavage and separation of tag-containing structures
US20030207300A1 (en) * 2000-04-28 2003-11-06 Matray Tracy J. Multiplex analytical platform using molecular tags
US7537938B2 (en) * 2000-04-28 2009-05-26 Monogram Biosciences, Inc. Biomarker detection in circulating cells
AU2001271438A1 (en) * 2000-06-23 2002-01-08 Daniel Armstrong Method for separation, identification and evaluation of microbes and cells
US20020029203A1 (en) * 2000-09-01 2002-03-07 Pelland David M. Electronic personal assistant with personality adaptation
DE50113383D1 (en) * 2000-09-07 2008-01-24 Gesim Ges Fuer Silizium Mikros METHOD FOR PRODUCING A 3-D MICROFLOW CELL AND 3-D MICROFLOW CELL
DK1322955T3 (en) * 2000-10-02 2012-09-10 Sophion Bioscience As Electrophysiological Measurement System
AU2002241480A1 (en) * 2000-11-17 2002-06-24 University Of Virginia Patent Foundation Method for orthogonal analyte stacking/injection systems in electrophoresis
US6596140B2 (en) * 2001-05-01 2003-07-22 Applera Corporation Multi-channel capillary electrophoresis device and method
HUP0501021A3 (en) 2001-05-21 2006-06-28 Aclara Biosciences Inc Mountai Methods and compositions for analyzing proteins
JP2005505749A (en) 2001-05-21 2005-02-24 アクララ バイオサイエンシーズ, インコーポレイテッド Methods and compositions for analyzing proteins
AU2002344221A1 (en) * 2001-05-26 2002-12-09 Aclara Biosciences, Inc. Catalytic amplification of multiplexed assay signals
US6896778B2 (en) 2001-06-04 2005-05-24 Epocal Inc. Electrode module
KR100455661B1 (en) * 2001-07-20 2004-11-12 학교법인 포항공과대학교 Lab on a chip for the analysis of amine compound
KR100442412B1 (en) * 2001-07-20 2004-07-30 학교법인 포항공과대학교 Lab on a chip system connected by capillaries
US6890409B2 (en) * 2001-08-24 2005-05-10 Applera Corporation Bubble-free and pressure-generating electrodes for electrophoretic and electroosmotic devices
CN1166422C (en) * 2001-11-05 2004-09-15 北京源德生物医学工程股份有限公司 Holder for external high-energy focusing ultrasonic treating apparatus
US20050053939A1 (en) * 2001-11-09 2005-03-10 Ahmed Chenna Methods and compositions for enhancing detection in determinations employing cleavable electrophoretic tag reagents
CN1164939C (en) * 2001-11-30 2004-09-01 清华大学 Capillary electrophoresis chip device for testing polymorphism of nucleotide and mononucleotide
AU2003219733A1 (en) * 2002-02-08 2003-09-02 University Of Louisville Research Foundation, Inc.Belknap Campus A capillary electrophoresis-electrochemical detection microchip device and supporting circuits
US7060798B2 (en) 2002-05-13 2006-06-13 State Of Oregon Acting By And Through The Oregon State Board Of Higher Education On Behalf Of Oregon State University Modified protein adhesives and lignocellulosic composites made from the adhesives
NL1021269C2 (en) * 2002-08-14 2004-02-17 Lionix B V Electrode system, for electro hydraulic microsystems, used for chemical analysis, includes hydraulic constriction filled with second electrically conductive liquid
US20040112751A1 (en) * 2002-08-26 2004-06-17 Jongyoon Han Multidimensional electrophoresis and methods of making and using thereof
WO2004027379A2 (en) * 2002-09-20 2004-04-01 Novus Molecular, Inc. Methods and devices for active bioassay
US20040091850A1 (en) * 2002-11-08 2004-05-13 Travis Boone Single cell analysis of membrane molecules
US7402398B2 (en) * 2003-07-17 2008-07-22 Monogram Biosciences, Inc. Measuring receptor homodimerization
WO2005019470A2 (en) * 2003-08-11 2005-03-03 Monogram Biosciences, Inc. Detecting and profiling molecular complexes
US8012328B2 (en) 2003-08-21 2011-09-06 Colorado State University Research Foundation Non-fluidic micro-detection device and uses thereof
US20060194306A1 (en) * 2003-08-25 2006-08-31 Herr Amy E System for gel electrophoretic immunoassay
EP1680666A4 (en) * 2003-10-27 2008-03-26 Monogram Biosciences Inc Detecting human anti-therapeutic antibodies
ES2432040T3 (en) * 2004-01-28 2013-11-29 454 Life Sciences Corporation Nucleic acid amplification with continuous flow emulsion
US7211184B2 (en) * 2004-08-04 2007-05-01 Ast Management Inc. Capillary electrophoresis devices
CN100417937C (en) * 2005-01-13 2008-09-10 清华大学 Chip type capacitance coupling contactless conductivity detector
JP2006224014A (en) * 2005-02-18 2006-08-31 Yokogawa Electric Corp Micro-flowing passage device
US7417418B1 (en) * 2005-06-14 2008-08-26 Ayliffe Harold E Thin film sensor
CN100437106C (en) * 2005-08-12 2008-11-26 浙江大学 An electrochemical current measurement device applicable to capillary electrophoresis
US7988839B2 (en) 2005-09-20 2011-08-02 University Of Louisville Research Foundation, Inc. Capillary electrophoresis systems and methods
WO2007075922A2 (en) * 2005-12-22 2007-07-05 Honeywell International Inc. Portable sample analyzer cartridge
US8171778B2 (en) * 2006-05-05 2012-05-08 E I Spectra, LLC Thin film particle sensor
US8616048B2 (en) * 2006-02-02 2013-12-31 E I Spectra, LLC Reusable thin film particle sensor
US9293311B1 (en) 2006-02-02 2016-03-22 E. I. Spectra, Llc Microfluidic interrogation device
US20110189714A1 (en) * 2010-02-03 2011-08-04 Ayliffe Harold E Microfluidic cell sorter and method
US9452429B2 (en) 2006-02-02 2016-09-27 E. I. Spectra, Llc Method for mutiplexed microfluidic bead-based immunoassay
KR100883775B1 (en) * 2007-03-22 2009-02-18 명지대학교 산학협력단 Electrochemical Detector Integrated on Microfabricated Capilliary Electrophoresis Chip and Method of Manufacturing the Same
US8025776B2 (en) * 2007-10-29 2011-09-27 Korea Institute Of Science And Technology Glass electrophoresis microchip and method of manufacturing the same by MEMS fabrication
WO2011108333A1 (en) * 2010-03-05 2011-09-09 コニカミノルタオプト株式会社 Microfluidic detection chip manufacturing method
US8804105B2 (en) 2012-03-27 2014-08-12 E. I. Spectra, Llc Combined optical imaging and electrical detection to characterize particles carried in a fluid
WO2013168835A1 (en) * 2012-05-09 2013-11-14 서울대학교산학협력단 Electrophoretic chip for electrochemical detection
EP2859340B1 (en) 2012-05-24 2017-05-03 The Governing Council Of The University Of Toronto Systems and methods for multiplexed electrochemical detection
WO2015112635A1 (en) 2014-01-21 2015-07-30 The Board Of Trustees Of The University Of Illinois Wettability patterned substrates for pumpless liquid transport and drainage
GB201501705D0 (en) 2015-02-02 2015-03-18 Atlas Genetics Ltd Instrument for performing a diagnostic test on a fluidic cartridge
GB2531615B (en) 2015-02-02 2017-11-22 Atlas Genetics Ltd Instrument for performing a diagnostic test on a fluidic cartridge
JP6641146B2 (en) * 2015-10-05 2020-02-05 株式会社タカゾノテクノロジー Voltage application device
JP6912112B2 (en) * 2015-10-05 2021-07-28 株式会社タカゾノテクノロジー Microbial detector
US10976282B2 (en) * 2016-03-16 2021-04-13 The University Of Notre Dame Du Lac Voltammetry in high-voltage fields
CN110044680B (en) * 2019-04-28 2024-02-23 宁波大学 Sample concentration device and method for capillary electrophoresis

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2191110B (en) * 1986-06-06 1989-12-06 Plessey Co Plc Chromatographic separation device
US5071531A (en) * 1989-05-01 1991-12-10 Soane Technologies, Inc. Casting of gradient gels
US5126022A (en) * 1990-02-28 1992-06-30 Soane Tecnologies, Inc. Method and device for moving molecules by the application of a plurality of electrical fields
GB2244135B (en) * 1990-05-04 1994-07-13 Gen Electric Co Plc Sensor devices
DE4314755C2 (en) * 1993-05-05 1995-03-02 Meinhard Prof Dr Knoll Capillary electrophoretic separation method and device for carrying out chemical or biochemical analyzes
GB9320286D0 (en) * 1993-10-01 1993-11-17 Drew Scient Ltd Electro-chemical detector
US5429734A (en) * 1993-10-12 1995-07-04 Massachusetts Institute Of Technology Monolithic capillary electrophoretic device
US5580435A (en) * 1994-06-10 1996-12-03 The Board Of Trustees Of The Leland Stanford Junior University System for detecting components of a sample in electrophoretic separation
US6045676A (en) * 1996-08-26 2000-04-04 The Board Of Regents Of The University Of California Electrochemical detector integrated on microfabricated capilliary electrophoresis chips

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