Heat sink for capillary electrophoresis

6103081
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Inventors

Morris, Michael D.
Rapp, Tracey L.

Application #

763908

Filed

Dec-11-1996

Published

Aug-15-2000

Current US Class

204/451
204/601

International Classes

G01N 027/26

Field of Search

204/451 204/601

Assignee

The Regents of The University of Michigan (Ann Arbor, MI)

Examiners

Warden; Jill

Attorney, Agent or Firm

Medlen & Carroll, LLP

US Patent References

4898658   Integrated temperat...
5021646   Remote optical pat...
5085757   Integrated temperat...
5122253   Transverse forced...
5164064   HPE capillary cart...
5183101   Circulating chiller...
5198091   Capillary cartridge...
5385654   Controlled temperat...
5402160   Ink jet recording a...
5685965   Capillary electroph...
5691013   Glass tubing
5730850   Capillary array ele...

Referenced by:

View Backward References

Other References

Nelson et al. ("Use of Peltier Thermoelectric Devices to Control Column Temperature in High-Performance Capillary Electrophoresis," J. Chromat., 480(Month Unknown1989), 111-127). English language translation of Kobayashi et al. (JP 03172756), Jul., 1991. JAPIO abstract of Shoichi et al. (JP 03172756 A), Jul. 26, 1991. A. Guttman et al., "Effect of Temperature On the Separation of DNA Restriction Fragments In Capillary Gel Electrophoresis," J. Chromatogr., 559:285-294 (1991) Month Unknown. S.L. Petersen et al., "Effects of Capillary Temperature Control and Electrophoretic Heterogeneity on Parameters Characterizing Separations of Particles By Capillary Zone Electrophoresis," Anal. Chem., 64:1676-1681 (1992) Month Unknown. J.H. Knox, "Thermal Effects and Band Spreading in Capillary Electro-Separation," Chromatographia, 26:329-337 (1988) Month Unknown. K.D. Davis et al., "Spatially Resolved Temperature Measurements in Electrophoresis Capillaries by Raman Thermometry," Anal. Chem., 65:293-298 (1993) Month Unknown. K.L. Liu et al., "Raman Spectroscopic Measurement of Spatial and Temporal Temperature Gradients in Operating Electrophoresis Capillaries," Anal. Chem., 66:3744-3750 (1994) Month Unknown. Flexible Fused Silica Capillary Tubing Standard Product List, Polymicro Technologies, Inc., Phoenix, AZ, (1996) Month Unknown. F.W. Peek et al., Dielectric Phenomena in High Voltage Engineering, Second Edition (pp. 4, 8-37); McGraw-Hill Book Co., Inc.: New York, NY (1920) Month Unknown. T.L. Rapp, "Temperature Control in Capillary Electrophoresis," Thesis, University of Michigan, Ann Arbor, Michigan, 1996, Appendix. J.P. Holman, Heat Transfer, Sixth Edition; McGraw-Hill Book Company, 43-55 (1986) Month Unknown. Technical data Code 9658, Physical Properties of MACOR, Corning Glass Works Month Unknown Year Unknown.

Citation

Cite This Patent

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Abstract
A cooling means for a capillary electrophoresis system is described. The cooling means is designed for efficient heat dissipation and operates without arcing at voltages higher than 30 kV.
 
Claims
We claim:

1. A method for performing electrophoresis, comprising:

a) providing:

i) first and second radiator plates comprised of a metal selected from the group consisting of aluminum, copper and brass, having inner surfaces, outer surfaces and a first electrically insulative material on at least one of said outer surfaces, said inner surface of said first radiator plate comprising at least one groove dimensioned to accommodate a tube, wherein said groove is coated with a second electrically insulative material, said insulative material comprising polyimide;

ii) first and second buffer reservoirs;

iii) at least one capillary electrophoresis tube having first and second ends in fluidic communication with said first and second buffer reservoirs; and



Description
FIELD OF THE INVENTION

The invention relates to the field of electrophoresis and more particularly, to means for cooling capillary electrophoresis devices.

BACKGROUND

Capillary electrophoresis (CE) is a chemistry separation technique which utilizes the differences in solute electrophoretic velocity to isolate the various components of a sample. Electro-osmotic flow is the bulk flow of buffer from a first buffer reservoir to a second buffer reservoir through the capillary due to the shearing movement of a diffuse layer of cations past a more firmly held, dense layer, interacting with integral, anionic groups of the capillary wall.

Factors which influence the velocity of electro-osmotic flow are: electrical field strength; buffer dielectric constant; zeta potential (the electrical potential existing between diffuse and compact cationic layers); and buffer viscosity (which is dependent on bulk properties of the buffer and the temperature of the buffer).

Electrophoretic force is the force applied to charged particles residing in an electrical field, and neutral or uncharged molecules are not affected. Positively charged molecules (cations) migrate towards the cathode while negatively charged molecules (anions) move towards the anode. Factors controlling solute electrophoretic velocity are: molecular charge; electrical field strength; viscosity of the migration media; and solute molecular geometric factors.
 
  Multiplexed microfluidic devices include a plurality of modular microfluidic elements, all of which are attached to a common frame or substrate, which...  An electrospray apparatus uses a microchannel formed in a microchip. Fluid is pumped through the channel to an outlet orifice using either hydraulic or...