Claims
- 1. A thermostat array comprising:
two or more capillary columns or two or more channels in a microfabricated device, wherein said two or more columns or said two or more channels are associated in an array; a heat conductive material surrounding each individual said column or channel, wherein each individual said column or channel is thermally insulated from every other individual said column or channel; one or more independently controlled heating or cooling elements positioned adjacent to individual said columns or channels, within said heat conductive material, wherein each heating or cooling element is connected to a source of heating or cooling; and one or more independently controlled temperature sensing elements positioned adjacent to individual said columns or channels, within said heat conductive material, wherein each temperature sensing element is connected to a temperature controller.
- 2. The array of claim 1, wherein said one or more heating or cooling elements are also used as said temperature sensing elements.
- 3. The array of claim 1, wherein said capillary columns or channels in a microfabricated device are suitable for use in a separation method calling for an electric field and said columns or channels are electrically isolated from said heating or cooling elements.
- 4. The array of claim 1, wherein said heating or cooling elements surround said capillary columns or channels.
- 5. The array of claim 1, comprising two or more independently controlled heating or cooling elements associated with an individual said column or channel, wherein said two or more heating or cooling elements are positioned along said associated column or channel so as to be capable of inducing a thermal gradient along the length of said column or channel.
- 6. The array of claim 1, wherein said independently controlled heating or cooling elements associated with an individual said column or channel are configured for temperature programming.
- 7. The array of claim 1, wherein said heating or cooling elements are solid-state.
- 8. The array of claim 1, wherein said heating or cooling elements are a fluid.
- 9. The array of claim 8, wherein said fluid heating or cooling element is a liquid.
- 10. The array of claim 8, wherein said fluid heating or cooling element is a gas.
- 11. A thermostat array comprising:
multiple capillary columns or multiple channels in a microfabricated device, wherein said multiple columns or said multiple channels are associated in an array; a heat conductive material surrounding each individual said column or channel, wherein each individual said column or channel is thermally insulated from every other individual said column or channel; one or more independently controlled heating or cooling elements positioned adjacent to individual said columns or channels, within said heat conductive material, wherein each heating or cooling element is connected to a source of heating or cooling; and one or more independently controlled temperature sensing elements positioned adjacent to individual said columns or channels, within said heat conductive material, wherein each temperature sensing element is connected to a temperature controller and wherein two or more of said multiple columns or channels are heated or cooled by a single heating or cooling element and multiple clusters of such columns or channels heated or cooled by a single heating or cooling element are associated in said thermostat array and wherein said columns or channels heated or cooled by a single heating or cooling element within a cluster of said columns or channels can be maintained at the same temperature and different clusters within said array are independently controllable.
- 12. A method of finding the optimum temperature for an analysis procedure for a particular sample, said method comprising the steps of:
providing the thermostat array of claim 1;determining the number of different temperature values to be examined; including within the thermostat array a number of columns or channels equal to the number of different temperature values to be examined; configuring each said column or channel for carrying out said analysis procedure for said sample; adjusting said temperature controller associated with said thermostat array so as to maintain the temperature at each individual said column or channel at one of said different temperature values to be examined; carrying out said analysis procedure on different aliquots of said sample simultaneously in each of said columns or channels, each of said individual columns or channels being maintained at a different one of said temperature values to be examined; and comparing the results of said analysis procedure carried out in said individual columns or channels to determine the optimum temperature for said analysis procedure for said sample.
- 13. The method of claim 12, wherein said analysis procedure is constant denaturant capillary electrophoresis.
- 14. The method of claim 12, wherein said analysis procedure is a single strand conformational polymorphism analysis.
- 15. A method of carrying out an analysis procedure simultaneously for multiple samples, each said sample having a different temperature optimum for said procedure, said method comprising the steps of:
providing the thermostat array of claim 1;determining the number of different samples to be examined; including within the thermostat array a number of columns or channels equal to the number of different samples to be examined; configuring each said column or channel for carrying out said analysis procedure for one of said multiple samples; adjusting said temperature controller associated with said thermostat array so as to maintain the temperature at each individual said column or channel at the optimum temperature for carrying out said analysis procedure for an individual said sample; carrying out said analysis procedure on said different samples simultaneously in each of said columns or channels, each of said individual columns or channels being maintained at the optimum analysis temperature for the individual said sample associated with said individual column; and obtaining the results of said analysis procedure for each of said samples.
- 16. The method of claim 15, wherein said analysis procedure is constant denaturant capillary electrophoresis.
- 17. The method of claim 15, wherein said analysis procedure is a single strand conformational polymorphism analysis.
- 18. A temperature controlled capillary column for column separations comprising:
a capillary column; a capillary body support surrounding said capillary column; a thermally conductive heater body surrounding said capillary body support; heat insulation material surrounding said thermally conductive heater body; one or more heating or cooling elements positioned adjacent to or within said thermally conductive heater body, wherein each heating or cooling element is connected to a source of heating or cooling; and one or more temperature sensing elements positioned adjacent to or within said thermally conductive heater body, wherein each temperature sensing element is connected to a temperature controller.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the priority of U.S. Provisional Application No. 60/187,517 filed Mar. 7, 2000 entitled, PARALLEL ARRAY OF INDEPENDENT THERMOSTATS FOR COLUMN SEPARATIONS, the whole of which is hereby incorporated by reference herein.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] Part of the work leading to this invention was carried out with United States Government support provided under a grant from the Department of Energy, Grant No. DE-FG02-90ER60985. Therefore, the U.S. Government has certain rights in this invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/07329 |
3/7/2001 |
WO |
|