Claims
- 1. A heating system comprising:
a non-contact radiant heater; a non-contact radiant temperature sensor; and a heatable device including a chemical reaction chamber having a volume of about 10 ml or less, the heatable device being spaced from the non-contact radiant heater spaced from the non-contact radiant temperature sensor, and positioned for the chemical reaction chamber to receive heat irradiated by the non-contact radiant heater and for the chemical reaction chamber to radiate heat toward the non-contact radiant temperature sensor.
- 2. The heating system of claim 1, further comprising a first platform region supporting the non-contact radiant heater, and a second platform region supporting the non-contact radiant temperature sensor.
- 3. The heating system of claim 2, wherein a plurality of non-contact radiant heaters are supported by the first platform region; and
a plurality of non-contact radiant temperature sensors are supported by the second platform region.
- 4. The heating system of claim 2, wherein the first platform region and the second platform region are each a part of the same platform.
- 5. The heating system of claim 1, wherein the heatable device is spaced away from the non-contact radiant heater by a distance of from about five mm to about 20 mm.
- 6. The heating system of claim 2, wherein the first platform region also supports the heatable device.
- 7. The heating system of claim 1, wherein the non-contact radiant heater comprises a laser source.
- 8. The heating system of claim 1, wherein the non-contact radiant heater comprises a halogen light source.
- 9. The heating system of claim 1, wherein the non-contact radiant heater produces a light that has a wavelength of about 0.7 micrometer or longer.
- 10. The heating system of claim 1, wherein the non-contact radiant heater can heat the heatable device to a temperature of from about 20° C. to about 100° C.
- 11. The heating system of claim 1, wherein the non-contact temperature sensor is capable of detecting energy having a wavelength of from about five micrometers to about 15 micrometers.
- 12. The heating system of claim 5, wherein the heatable device includes a substrate, and the substrate has a thermal conductivity of below about 1.0 W/m° C.
- 13. The heating system of claim 5, wherein the heatable device includes a substrate, and the substrate includes a plastic material.
- 14. The heating system of claim 5, wherein the heatable device further comprises a sample cover including a surface that at least partially defines the reaction chamber.
- 15. The heating system of claim 14, wherein the sample cover surface defines at least one sidewall of the reaction chamber.
- 16. The heating system of claim 14, wherein the heatable device includes two sample covers that define at least two sidewalls of the reaction chamber.
- 17. The heating system of claim 14, wherein the sample cover has a thermal conductivity of greater than about 1.0 W/m° C., and an emissivity of about 0.1 or higher.
- 18. The heating system of claim 14, wherein the sample cover comprises an aluminum film blackened on at least a first side.
- 19. The heating system of claim 18, wherein the aluminum film has been blackened by anodizing, painting, coating, or any combination thereof.
- 20. The heating system of claim 14, wherein the sample cover comprises a pigmented polycarbonate film material.
- 21. The heating system of claim 1, further comprising a biochemical sample including a nucleic acid sequence in the reaction chamber and sufficient components to enable at least one cycle of polymerase chain reaction of the nucleic acid sequence.
- 22. The heating system of claim 1, further comprising a control unit programmed to control the heat irradiated by the non-contact radiant heater based on a signal generated by the non-contact radiant temperature sensor.
- 23. The heating system of claim 1, wherein the heatable device is spaced away from the non-contact radiant temperature sensor by a distance of from about five mm to about 20 mm.
- 24. The heating system of claim 1, wherein the heatable device is a microfluidic analytical device.
- 25. The heating system of claim 1, wherein the reaction chamber has at least one dimension that is less than or equal to 500 μm.
- 26. The heating system of claim 1, wherein the non-contact radiant temperature sensor has a field of view that falls within a surface of the reaction chamber.
- 27. A heating system comprising:
a non-contact radiant heater; a non-contact radiant temperature sensor; and a heatable device including a chemical reaction chamber, the heatable device being spaced from the non-contact radiant heater a distance of from about five mm to about 20 mm, being spaced from the non-contact radiant temperature sensor a distance of from about five to about 20 mm, and positioned for the chemical reaction chamber to receive heat irradiated by the non-contact radiant heater and for the chemical reaction chamber to radiate heat toward the non-contact radiant temperature sensor.
- 28. A heating system comprising:
a non-contact radiant heater; a non-contact radiant temperature sensor; and a heatable device including a chemical reaction chamber having at least one sample-confining dimension of about 600 μm or less, the heatable device being spaced from the non-contact radiant heater, spaced from the non-contact radiant temperature sensor, and positioned for the chemical reaction chamber to receive heat irradiated by the non-contact radiant heater and for the chemical reaction chamber to radiate heat toward the non-contact radiant temperature sensor.
- 29. A heating system comprising:
a non-contact radiant heater; a non-contact radiant temperature sensor; and a heatable device including a chemical reaction chamber including a sidewall having an outer surface of a first area, the heatable device being spaced from the non-contact radiant heater, spaced from the non-contact radiant temperature sensor, and positioned for the chemical reaction chamber to receive heat irradiated by the non-contact radiant heater and for the chemical reaction chamber to radiate heat toward the non-contact radiant temperature sensor, wherein the non-contact radiant temperature sensor has a field of view that intersects the outer surface of the sidewall at a second area that is smaller than the first area.
- 30. A method of heating a biochemical sample comprising:
providing a heatable device that includes a reaction chamber retaining a sample, the reaction chamber having a volume of about 10 ml or less; heating the reaction chamber with a non-contact radiant heater spaced from the heatable device; and sensing a temperature of the reaction chamber with a non-contact temperature sensor spaced from the heatable device.
- 31. The method of claim 30, further comprising the step of adjusting a radiation output of the non-contact radiant heater based on a temperature of the reaction chamber sensed by the non-contact temperature sensor.
- 32. The method of claim 30, wherein the heatable device comprises a plurality of reaction chambers, a plurality of non-contact radiant heaters are provided, and a plurality of non-contact radiant temperature sensors are provided; and the method includes:
heating the plurality of reaction chambers with the plurality of non-contact radiant heaters; and sensing temperatures of the plurality of reaction chambers with the plurality of non-contact radiant temperature sensors.
- 33. The method of claim 30, wherein the heating comprises heating with laser-produced radiation.
- 34. The method of claim 30, wherein the heating comprises heating with a halogen light source.
- 35. The method of claim 30, wherein the non-contact radiant heater produces radiation having a wavelength of about 0.7 micrometer or longer.
- 36. The method of claim 30, wherein the heating comprises heating the reaction chamber to a temperature of from about 20° C. to about 100° C.
- 37. The method of claim 30, wherein the sensing comprises sensing radiant energy that has an approximate wavelength of from about five micrometers to about 15 micrometers.
- 38. The method of claim 30, wherein the sample comprises a nucleic acid sequence and sufficient components to enable at least one cycle of polymerase chain reaction of the nucleic acid sequence, and the method further comprises:
cycling the temperature of the reaction chamber in a manner sufficient to effect polymerase chain reaction of the nucleic acid sequence.
- 39. The method of claim 38, wherein cycling comprises:
heating the reaction chamber to a temperature of about 95° C. with the non-contact radiant heater; and cooling the reaction chamber to a temperature of about 60° C., and maintaining the temperature at about 60° C.
- 40. The method of claim 39, further comprising the step of repeating the heating and cooling of the reaction chamber one or more times.
- 41. A method of heating a biochemical sample comprising:
providing a heatable device that includes a reaction chamber retaining a sample, the reaction chamber having at least one sample-confining dimension of about 600 μm or less; heating the reaction chamber with a non-contact radiant heater spaced from the heatable device; and sensing a temperature of the reaction chamber with a non-contact temperature sensor spaced from the heatable device.
- 42. A method of heating a biochemical sample comprising:
providing a heatable device that includes a reaction chamber retaining a sample; heating the reaction chamber with a non-contact radiant heater spaced from the heatable device a distance of from about five mm to about 20 mm; and sensing a temperature of the reaction chamber with a non-contact temperature sensor spaced from the heatable device a distance of from about five mm to about 20 mm.
CROSS REFERENCE TO RELATED APPLICATION
[0001] The present application claims a benefit under 35 U.S.C. §119(e) from earlier filed U.S. Provisional Patent Application No. 60/382,502, filed May 22, 2002, which is incorporated herein in its entirety by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60382502 |
May 2002 |
US |