Claims
- 1. A multiplexed, absorbance-based capillary electrophoresis system for analyzing multiple samples simultaneously without a mask or slit comprising:
a reservoir manifold having a cavity for containing a buffer solution, a plurality of capillary apertures for receiving capillary tubes to contact the buffer solution within the cavity, an electrode aperture for receiving an electrode to contact the buffer solution within the cavity and a vent aperture for venting the cavity; an electrode extending through the electrode aperture into the cavity; a planar array of capillary tubes having inlet ends and outlet ends, the outlet ends extending through the capillary apertures and into the cavity; a vent valve attached directly to the vent aperture for releasing pressure from the cavity; a photodetector for detecting light passing through the capillary tubes positioned parallel to the planar array of capillary tubes at a distance such that the array of capillary tubes is visible and in focus; and a light source positioned with respect to the photodetector so that the majority of light that passes between capillary tubes in the planar array of capillary tubes does not reach the photodetector.
- 2. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 further comprising a vacuum source operatively connected to the outlet ends of the capillary tubes.
- 3. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 further comprising end caps that fit into each end of the cavity in the reservoir manifold.
- 4. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 further comprising a second vent valve attached to a top aperture of the reservoir manifold via a tube.
- 5. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 further comprising an access port in the reservoir manifold for draining the buffer solution from the cavity and filling the cavity with buffer solution.
- 6. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 wherein the photodetector is positioned at a distance which is at least about 10 times the cross-sectional distance of a capillary tube measured orthogonally to the planar array of capillary tubes.
- 7. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 wherein the area where light is emitted from the light source is positioned in an off-axis alignment.
- 8. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 wherein the photodetector is a linear photodiode array.
- 9. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 which further comprises an optical filter positioned between the planar array of capillary tubes and the photodetector.
- 10. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 which further comprises a flat-field lens positioned between the planar array of capillary tubes and the photodetector.
- 11. The multiplexed, absorbance-based capillary electrophoresis system of claim 1 which further comprises a collimating lens positioned between the light source and the planar array of capillary tubes.
- 12. A reservoir manifold system for use in multiplexed capillary electrophoresis, comprising:
a reservoir manifold having a cavity for containing a buffer solution, a plurality of capillary apertures for receiving capillary tubes to contact the buffer solution within the cavity, an electrode aperture for receiving an electrode to contact the buffer solution within the cavity and a vent aperture for venting the cavity; an electrode extending through the electrode aperture into the cavity; a plurality of capillary tubes extending through the capillary apertures and into the cavity; and a vent valve attached directly to the vent aperture for releasing pressure from the cavity.
- 13. The reservoir manifold system of claim 12 further comprising end caps that fit into each end of the cavity.
- 14. The reservoir manifold system of claim 12 further comprising a second vent valve attached to a top aperture via a tube.
- 15. The reservoir manifold system of claim 12 further comprising a reservoir manifold having first and second sides of the housing structure and a first slot and a second slot on said opposite sides of the housing structure for securing the structure.
- 16. The reservoir manifold system of claim 15 wherein the first and second slots are sloped.
- 17. The reservoir manifold system of claim 12 further comprising a reservoir manifold with an access port in the structure for draining the buffer solution from the cavity and filling the cavity with buffer solution.
- 18. The reservoir manifold system of claim 12 wherein each of the capillary receiving apertures is threaded.
- 19. The reservoir manifold system of claim 12 wherein the reservoir manifold is made of acid resistant polyethylene terephthalate.
- 20. In a multiplexed capillary electrophoresis system, the improvement comprising:
a vent directly connected to a reservoir manifold to dissipate the pressure produced by gases during electrolysis.
- 21. A method of analyzing multiple samples simultaneously by absorption detection comprising:
irradiating a planar array of capillary tubes filled with samples with a light source that emits at least one wavelength of light absorbed by the samples, said capillary tubes having inlet ends and outlet ends, said outlet ends terminating in a common solution in a reservoir manifold; detecting absorption of light with a photodetector positioned off-axis with the area where light is emitted from the light source and positioned parallel to the planar array of capillary tubes at a distance of at least about 10 times a cross-sectional distance of a capillary tube measured orthogonally to the planar array of multiple capillary tubes; and venting gases produced by electrolysis through a vent valve directly attached to a vent aperture in the reservoir manifold.
- 22. The method of claim 21 wherein the distance is from about 3 cm to 40 cm.
- 23. The method of claim 21 wherein the planar array of capillary tubes comprises at least 10 capillary tubes.
- 24. The method of claim 21 wherein the photodetector is a linear photodiode array.
- 25. The method of claim 21 wherein the light source emits light of a wavelength between 180 nm to about 1500 nm.
- 26. The method of claim 21 wherein the light source has a power output of about 0.5 mW to about 50 mW.
- 27. The method of claim 21 wherein the capillary tube inlets have separate associated inlet reservoirs and the outlet end of each has a common outlet reservoir.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a Continuation-in-part of application Ser. No. 10/377,959 filed Feb. 28, 2003 of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
10377959 |
Feb 2003 |
US |
| Child |
10819842 |
Apr 2004 |
US |