Claims
- 1. An apparatus for thermally controlling and optically interrogating a reaction mixture, the apparatus comprising:
a) a reaction vessel having a chamber for holding the mixture, wherein the vessel includes first and second optically transmissive walls; b) opposing plates positioned to receive the vessel between them; c) at least one heating element coupled to at least one of the plates for heating the reaction mixture; and d) first and second optics assemblies positioned such that when the vessel is placed between the plates, the first and second optics assemblies are in optical communication with the first and second optically transmissive walls, respectively; the first optics assembly comprising:
i) a first housing having a first optical window; ii) at least two light sources for transmitting excitation beams to the reaction mixture through the first window; and iii) a first set of filters for filtering the excitation beams such that each of the beams transmitted to the reaction mixture has a substantially distinct excitation wavelength range, wherein the light sources and the first set of filters are rigidly fixed in the first housing; and the second optics assembly comprising:
i) a second housing having a second optical window for receiving light emitted from the chamber; ii) at least two detectors for detecting the emitted light; and iii) a second set of filters for separating the emitted light into at least two emission wavelength ranges and for directing the emitted light in each of the emission wavelength ranges to a respective one of the detectors, wherein the detectors and the second set of filters are rigidly fixed in the second housing.
- 2. The apparatus of claim 1, wherein the first optics assembly includes at least four light sources arranged with the first set of filters for transmitting the excitation beams in at least four excitation wavelength ranges, and wherein the second optics assembly includes at least four detectors arranged with the second set of filters for detecting the emitted light in at least four emission wavelength ranges.
- 3. The apparatus of claim 1, further comprising an adjustable power source for supplying a variable amount of power to the light sources.
- 4. The apparatus of claim 1, further comprising electronics for receiving signals from the detectors and for adjusting the gain or offset of the signals.
- 5. The apparatus of claim 1, further comprising a controller for controlling the operation of the optics assemblies.
- 6. The apparatus of claim 5, wherein the controller is programmed to convert output signals from the detectors into values representative of the concentrations of individual dyes in the reaction mixture using a calibration matrix.
- 7. The apparatus of claim 5, wherein at least one of the excitation wavelength ranges overlaps one of the emission wavelength ranges, and wherein the controller is programmed to receive a calibration signal from the detector receiving light in the overlapped emission wavelength range and to adjust subsequent output signals received from the detectors in dependence upon the calibration signal.
- 8. The apparatus of claim 1, wherein a portion of the vessel defining the chamber includes retro-reflective walls for reflecting light emitted from the reaction mixture.
- 9. The apparatus of claim 8, wherein the chamber is substantially diamond-shaped, and wherein the optically transmissive walls define the bottom portion of the chamber and the retro-reflective walls define the top portion of the chamber.
- 10. The apparatus of claim 1, wherein the first and second optically transmissive walls of the vessel are angularly offset from each other by about 90°.
- 11. The apparatus of claim 10, wherein the longitudinal axes of the optics assemblies are angularly offset from each other at an angle of about 90°, and wherein the assemblies are positioned such that when the vessel is placed between the plates, the longitudinal axis of the first optics assembly is substantially orthogonal to the first optically transmissive wall and the longitudinal axis of the second optics assembly is substantially orthogonal to the second optically transmissive wall.
- 12. The apparatus of claim 1, wherein each of the sides of the chamber has a length in the range of 1 to 15 mm, and wherein the chamber has a thickness in the range of 0.5 to 5 mm.
- 13. The apparatus of claim 1, wherein each of the sides of the chamber has a length in the range of 5 to 12 mm, and wherein the chamber has a thickness in the range of 0.5 to 2 mm.
- 14. The apparatus of claim 1, wherein the ratio of the length of each side of the chamber to the thickness of the chamber is at least 2:1.
- 15. The apparatus of claim 1, wherein the ratio of the length of each side of the chamber to the thickness of the chamber is at least 5:1.
- 16. A system for independently thermally controlling and optically interrogating a plurality of reaction mixtures, the system comprising:
a) a plurality of reaction vessels, wherein each of the vessels has a reaction chamber for holding one of the mixtures, and wherein each of the vessels includes first and second optically transmissive walls defining a portion of its chamber; b) a corresponding plurality of heat-exchanging modules for receiving the vessels, wherein each of the modules comprises:
i) opposing plates positioned to receive one of the vessels between them; ii) at least one heating element coupled to at least one of the plates for heating the reaction mixture contained in the vessel; and iii) first and second optics assemblies positioned such that when the vessel is placed between the plates, the first and second optics assemblies are in optical communication with the first and second optically transmissive walls of the vessel, respectively; the first optics assembly comprising:
a first housing having a first optical window; at least two light sources for transmitting excitation beams to the reaction mixture through the first window; and a first set of filters for filtering the excitation beams such that each of the beams transmitted to the reaction mixture has a substantially distinct excitation wavelength range, wherein the light sources and the first set of filters are rigidly fixed in the first housing; and the second optics assembly comprising:
i) a second housing having a second optical window for receiving light emitted from the vessel; ii) at least two detectors for detecting the emitted light; and iii) a second set of filters for separating the emitted light into at least two emission wavelength ranges and for directing the emitted light in each of the emission wavelength ranges to a respective one of the detectors, wherein the detectors and the second set of filters are rigidly fixed in the second housing; and c) a base instrument for receiving the heat-exchanging modules, wherein the base instrument includes processing electronics for controlling the operation of each module.
- 17. The system of claim 16, wherein the first optics assembly of each module includes at least four light sources arranged with the first set of filters for transmitting the excitation beams in at least four excitation wavelength ranges, and wherein the second optics assembly of each module includes at least four detectors arranged with the second set of filters for detecting the emitted light in at least four emission wavelength ranges.
- 18. The system of claim 16, further comprising a computer programmed to control the processing electronics in the base instrument.
- 19. The system of claim 16, wherein each of the heat-exchanging modules further includes a cooling system for cooling one of the reaction mixtures.
- 20. An apparatus for optically interrogating a reaction mixture contained in a reaction vessel having first and second optically transmissive walls, the apparatus comprising:
a) a slot for receiving the vessel; and b) first and second optics assemblies positioned such that when the vessel is placed in the slot, the first and second optics assemblies are in optical communication with the first and second optically transmissive walls of the vessel, respectively; wherein the first optics assembly comprises:
i) a first housing having a first optical window; ii) at least two light sources for transmitting excitation beams to the reaction mixture through the first window; and iii) a first set of filters for filtering the excitation beams such that each of the beams transmitted to the reaction mixture has a substantially distinct excitation wavelength range, wherein the light sources and the first set of filters are rigidly fixed in the first housing; and wherein the second optics assembly comprises:
i) a second housing having a second optical window for receiving light emitted from the mixture; ii) at least two detectors for detecting the emitted light; and iii) a second set of filters for separating the emitted light into at least two emission wavelength ranges and for directing the emitted light in each of the emission wavelength ranges to a respective one of the detectors, wherein the detectors and the second set of filters are rigidly fixed in the second housing.
- 21. The apparatus of claim 20, wherein the first optics assembly includes at least four light sources arranged with the first set of filters for transmitting the excitation beams in at least four excitation wavelength ranges, and wherein the second optics assembly includes at least four detectors arranged with the second set of filters for detecting the emitted light in at least four emission wavelength ranges.
- 22. The apparatus of claim 20, further comprising an adjustable power source for supplying a variable amount of power to the light sources.
- 23. The apparatus of claim 20, further comprising electronics for receiving signals from the detectors and for adjusting the gain or offset of the signals.
- 24. The apparatus of claim 20, further comprising a controller for controlling the operation of the optics assemblies.
- 25. The apparatus of claim 24, wherein the controller is programmed to convert output signals from the detectors into values representative of the concentrations of individual dyes in the reaction mixture using a calibration matrix.
- 26. The apparatus of claim 24, wherein at least one of the excitation wavelength ranges overlaps one of the emission wavelength ranges, and wherein the controller is programmed to receive a calibration signal from the detector receiving light in the overlapped emission wavelength range and to adjust subsequent output signals received from the detectors in dependence upon the calibration signal.
- 27. The apparatus of claim 20, wherein the first and second optically transmissive walls of the vessel are angularly offset from each other at an angle of about 90°, the longitudinal axes of the optics assemblies are angularly offset from each other at an angle of about 90°, and the assemblies are positioned such that when the vessel is placed in the slot, the longitudinal axis of the first optics assembly is substantially orthogonal to the first optically transmissive wall and the longitudinal axis of the second optics assembly is substantially orthogonal to the second optically transmissive wall.
- 28. The apparatus of claim 20, wherein the first optics assembly further comprises a first lens positioned in the first optical window for focusing the excitation beams, and wherein the second optics assembly further comprises a second lens positioned in the second optical window for collimating the light emitted from the chamber.
- 29. An apparatus for thermally controlling and optically interrogating a reaction mixture, the apparatus comprising:
a) a reaction vessel having a chamber for holding the mixture, wherein the vessel includes first and second optically transmissive walls; b) opposing plates positioned to receive the vessel between them; c) at least one heating element coupled to at least one of the plates for heating the reaction mixture; and d) first and second optics assemblies positioned such that when the vessel is placed between the plates, the first and second optics assemblies are in optical communication with the first and second optically transmissive walls, respectively; the first optics assembly comprising:
i) a first housing having a first optical window; ii) a first light source for transmitting a first excitation beam to the reaction mixture through the first window; iii) a first detector for receiving light emitted from the chamber through the first window; and iv) a first set of filters arranged in the first housing for filtering portions of the first excitation beam outside of a first excitation wavelength range, for filtering portions of the emitted light outside of a first emission wavelength range, and for directing the emitted light in the first emission wavelength range to the first detector, wherein the first light source, the first set of filters, and the first detector are rigidly fixed in the first housing; and the second optics assembly comprising:
i) a second housing having a second optical window; ii) a second light source for transmitting a second excitation beam to the reaction mixture through the second window; iii) a second detector for receiving light emitted from the chamber through the second window; and iv) a second set of filters arranged in the second housing for filtering portions of the second excitation beam outside of a second excitation wavelength range different than the first excitation wavelength range, for filtering portions of the emitted light outside of a second emission wavelength range different than the first emission wavelength range, and for directing the emitted light in the second emission wavelength range to the second detector, wherein the second light source, the second set of filters, and the second detector are rigidly fixed in the second housing.
- 30. The apparatus of claim 29, wherein the first optics assembly further includes a third detector rigidly fixed in the first housing for receiving light emitted from the chamber in a third emission wavelength range different than the first and second emission wavelength ranges, and wherein the first set of filters includes at least one filter for filtering the emitted light outside of the third emission wavelength range and for directing the emitted light in the third emission wavelength range to the third detector.
- 31. The apparatus of claim 30, wherein the second optics assembly further includes a fourth detector rigidly fixed in the second housing for receiving light emitted from the chamber in a fourth emission wavelength range different than the first, second, and third emission wavelength ranges, and wherein the second set of filters includes at least one filter for filtering the emitted light outside of the fourth emission wavelength range and for directing the emitted light in the fourth emission wavelength range to the fourth detector.
- 32. The apparatus of claim 29, wherein a portion of the vessel defining the chamber includes retro-reflective walls for reflecting light emitted from the reaction mixture.
- 33. The apparatus of claim 32, wherein the chamber is substantially diamond-shaped, and wherein the optically transmissive walls define the bottom portion of the chamber and the retro-reflective walls define the top portion of the chamber.
- 34. The apparatus of claim 29, wherein the first and second optically transmissive walls of the vessel are angularly offset from each other by an angle of about 90°.
- 35. The apparatus of claim 34, wherein the longitudinal axes of the optics assemblies are angularly offset from each other by an angle of about 90°, and wherein the assemblies are positioned such that when the vessel is placed between the plates, the longitudinal axis of the first optics assembly is substantially orthogonal to the first optically transmissive wall and the longitudinal axis of the second optics assembly is substantially orthogonal to the second optically transmissive wall.
- 36. The apparatus of claim 29, wherein each of the sides of the chamber has a length in the range of 1 to 15 mm, and wherein the chamber has a thickness in the range of 0.5 to 5 mm.
- 37. The apparatus of claim 29, wherein each of the sides of the chamber has a length in the range of 5 to 12 mm, and wherein the chamber has a thickness in the range of 0.5 to 2 mm.
- 38. The apparatus of claim 29, wherein the ratio of the length of each side of the chamber to the thickness of the chamber is at least 2:1.
- 39. The apparatus of claim 29, wherein the ratio of the length of each side of the chamber to the thickness of the chamber is at least 5:1.
- 40. A system for independently thermally controlling and optically interrogating a plurality of reaction mixtures, the system comprising:
a) a plurality of reaction vessels, wherein each of the vessels has a reaction chamber for holding one of the mixtures, and wherein each of the vessels includes first and second optically transmissive walls defining a portion of its chamber; b) a corresponding plurality of heat-exchanging modules for receiving the vessels, wherein each of the modules comprises:
i) opposing plates positioned to receive one of the vessels between them; ii) at least one heating element coupled to at least one of the plates for heating the reaction mixture contained in the vessel; and iii) first and second optics assemblies positioned such that when the vessel is placed between the plates, the first and second optics assemblies are in optical communication with the first and second optically transmissive walls of the vessel, respectively; the first optics assembly comprising:
a first housing having a first optical window; a first light source for transmitting a first excitation beam to the reaction mixture contained in the vessel through the first window; a first detector for receiving light emitted from the chamber through the first window; and a first set of filters arranged in the first housing for filtering portions of the first excitation beam outside of a first excitation wavelength range, for filtering portions of the emitted light outside of a first emission wavelength range, and for directing the emitted light in the first emission wavelength range to the first detector, wherein the first light source, the first set of filters, and the first detector are rigidly fixed in the first housing; and the second optics assembly comprising: a second housing having a second optical window; a second light source for transmitting a second excitation beam to the reaction mixture through the second window; a second detector for receiving light emitted from the chamber through the second window; and a second set of filters arranged in the second housing for filtering portions of the second excitation beam outside of a second excitation wavelength range different than the first excitation wavelength range, for filtering portions of the emitted light outside of a second emission wavelength range different than the first emission wavelength range, and for directing the emitted light in the second emission wavelength range to the second detector, wherein the second light source, the second set of filters, and the second detector are rigidly fixed in the second housing; and c) a base instrument for receiving the heat-exchanging modules, wherein the base instrument includes processing electronics for independently controlling the operation of each module.
- 41. The system of claim 40, wherein the first optics assembly of each heat-exchanging module further includes a third detector rigidly fixed in the first housing for receiving light emitted from the chamber in a third emission wavelength range different than the first and second emission wavelength ranges, and wherein the first set of filters includes at least one filter for filtering the emitted light outside of the third emission wavelength range and for directing the emitted light in the third emission wavelength range to the third detector.
- 42. The system of claim 41, wherein the second optics assembly of each heat-exchanging module further includes a fourth detector rigidly fixed in the second housing for receiving light emitted from the chamber in a fourth emission wavelength range different than the first, second, and third emission wavelength ranges, and wherein the second set of filters includes at least one filter for filtering the emitted light outside of the fourth emission wavelength range and for directing the emitted light in the fourth emission wavelength range to the fourth detector.
- 43. The system of claim 40, further comprising a computer programmed to control the processing electronics in the base instrument.
- 44. An apparatus for optically interrogating a reaction mixture contained in a reaction vessel, wherein the vessel includes first and second optically transmissive walls, the apparatus comprising:
a) a slot for receiving the vessel; and b) first and second optics assemblies positioned such that when the vessel is placed in the slot, the first and second optics assemblies are in optical communication with the first and second optically transmissive walls of the vessel, respectively; wherein the first optics assembly comprises:
i) a first housing having a first optical window; ii) a first light source for transmitting a first excitation beam to the reaction mixture through the first window; iii) a first detector for receiving light emitted from the chamber through the first window; and iv) a first set of filters arranged in the first housing for filtering portions of the first excitation beam outside of a first excitation wavelength range, for filtering portions of the emitted light outside of a first emission wavelength range, and for directing the emitted light in the first emission wavelength range to the first detector, wherein the first light source, the first set of filters, and the first detector are rigidly fixed in the first housing; and wherein the second optics assembly comprises:
i) a second housing having a second optical window; ii) a second light source for transmitting a second excitation beam to the reaction mixture through the second window; iii) a second detector for receiving light emitted from the chamber through the second window; and iv) a second set of filters arranged in the second housing for filtering portions of the second excitation beam outside of a second excitation wavelength range different than the first excitation wavelength range, for filtering portions of the emitted light outside of a second emission wavelength range different than the first emission wavelength range, and for directing the emitted light in the second emission wavelength range to the second detector, wherein the second light source, the second set of filters, and the second detector are rigidly fixed in the second housing.
- 45. The apparatus of claim 44, wherein the first optics assembly further includes a third detector rigidly fixed in the first housing for receiving light emitted from the chamber in a third emission wavelength range different than the first and second emission wavelength ranges, and wherein the first set of filters includes at least one filter for filtering the emitted light outside of the third emission wavelength range and for directing the emitted light in the third emission wavelength range to the third detector.
- 46. The apparatus of claim 45, wherein the second optics assembly further includes a fourth detector rigidly fixed in the second housing for receiving light emitted from the chamber in a fourth emission wavelength range different than the first, second, and third emission wavelength ranges, and wherein the second set of filters includes at least one filter for filtering the emitted light outside of the fourth emission wavelength range and for directing the emitted light in the fourth emission wavelength range to the fourth detector.
- 47. The apparatus of claim 44, further comprising an adjustable power source for supplying a variable amount of power to each of the light sources.
- 48. The apparatus of claim 44, further comprising electronics for receiving signals from the detectors and for adjusting the gain or offset of the signals.
- 49. The apparatus of claim 44, further comprising a controller for controlling the operation of the optics assemblies.
- 50. The apparatus of claim 44, wherein the first and second optically transmissive walls of the vessel are angularly offset from each other at an angle of about 90°, the longitudinal axes of the optics assemblies are angularly offset from each other at an angle of about 90°, and the assemblies are positioned such that when the vessel is placed in the slot, the longitudinal axis of the first optics assembly is substantially orthogonal to the first optically transmissive wall and the longitudinal axis of the second optics assembly is substantially orthogonal to the second optically transmissive wall.
RELATED APPLICATION INFORMATION
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/081,260 filed May 19, 1998 and U.S. application Ser. No. 09/194,374 filed Nov. 24, 1998. This application is also related to U.S. application Ser. No. 09/275,061 filed Mar. 23, 1999. All of these applications are incorporated by reference herein.
Government Interests
[0002] This invention was made with Government support under contract DAAM01-96-C-0061 awarded by the U.S. Army. The Government has certain rights in the invention.
Continuations (1)
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09314605 |
May 1999 |
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10119228 |
Apr 2002 |
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Continuation in Parts (2)
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09081260 |
May 1998 |
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10119228 |
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09194374 |
Jul 2000 |
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10119228 |
Apr 2002 |
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