Claims
- 1. An instrument comprising:
a plurality of spaced-apart reaction regions; and a light emitting diode source comprising more than one light emitting diode, wherein the light emitting diode source is capable of illuminating at least one of the plurality of reaction regions with excitation beams.
- 2. The instrument of claim 1, wherein the light emitting diode source is adapted to illuminate at least two of the plurality of reaction regions simultaneously with excitation beams.
- 3. The instrument of claim 1, comprising a focusing lens disposed along an excitation beam path between the light emitting diode source and the spaced-apart reaction regions.
- 4. The instrument of claim 3, wherein the focusing lens is a Fresnel lens.
- 5. The instrument of claim 1, further comprising a detector along an emission beam path, wherein the detector is capable of receiving emission beams from at least one of the plurality of reaction regions and is capable of generating primary data signals representative of the emission beams.
- 6. The instrument of claim 5, further comprising a processor capable of receiving the primary data signals and capable of computing corresponding concentrations of analytes.
- 7. The instrument of claim 5, further comprising a detector lens disposed along the emission beam path between the plurality of reaction regions and the detector.
- 8. The instrument of claim 5, further comprising a long pass filter disposed along the emission beam path between the plurality of reaction regions and the detector.
- 9. The instrument of claim 5, further comprising an emission beam filter disposed along the emission beam path between the long pass filter and the detector.
- 10. The instrument of claim 5, further comprising a multiple bandpass filter disposed along the emission beam path between the plurality of reaction regions and the detector.
- 11. The instrument of claim 1, further comprising a fold mirror disposed along an excitation beam path between the light emitting diode source and the plurality of reaction regions.
- 12. The instrument of claim 1, further comprising an excitation beam filter disposed along an excitation beam path between the light emitting diode source and the plurality of reaction regions.
- 13. The instrument of claim 12, further comprising a long pass filter disposed along the excitation beam path between the excitation beam filter and the plurality of reaction regions.
- 14. The instrument of claim 12, further comprising a multiple bandpass filter disposed along the excitation beam path between the excitation beam filter and the plurality of reaction regions.
- 15. The instrument of claim 1, wherein a sample is disposed in at least one of the plurality of reaction regions, and wherein the sample includes a dye that is capable of emitting an emission beam when illuminated with excitation beams.
- 16. The instrument of claim 15, wherein the sample comprises components for nucleic acid sequence amplification.
- 17. The instrument of claim 16, wherein the nucleic acid sequence amplification is a polymerase chain reaction.
- 18. The instrument of claim 1, wherein the plurality of reaction regions comprises 96 reaction regions.
- 19. The instrument of claim 1, wherein each light emitting diode has a wattage of greater than about 1 microwatt.
- 20. The instrument of claim 1, wherein each light emitting diode has a wattage of about 5 microwatts or greater.
- 21. The instrument of claim 1, wherein there is a correspondence of one to at least two between the light emitting diode source and the plurality of reaction regions.
- 22. The instrument of claim 1, wherein there is a correspondence of one to at least four between the light emitting diode source and the plurality of reaction regions.
- 23. The instrument of claim 1, further comprising a condensing lens.
- 24. The instrument of claim 1, wherein the light emitting diode source includes an organic light emitting diode.
- 25. An instrument comprising:
a plurality of spaced-apart reaction regions; a solid state laser source comprising more than one solid state laser, wherein the solid state laser source is capable of illuminating the plurality of reaction regions with excitation beams.
- 26. The instrument of claim 25, wherein the solid state laser source is adapted to illuminate at least two of the plurality of reaction regions simultaneously with excitation beams.
- 27. The instrument of claim 25, comprising a focusing lens disposed along an excitation beam path between the solid state laser source and the spaced-apart reaction regions.
- 28. The instrument of claim 27, wherein the focusing lens is a Fresnel lens.
- 29. An instrument comprising:
a plurality of spaced-apart reaction regions; and a micro-wire laser source comprising more than one micro-wire laser, wherein the micro-wire laser source is capable of illuminating at least one of the plurality of reaction regions with excitation beams.
- 30. The instrument of claim 29, wherein the micro-wire laser source is adapted to illuminate at least two of the plurality of reaction regions simultaneously with excitation beams.
- 31. The instrument of claim 29, comprising a focusing lens disposed along an excitation beam path between the light emitting diode source and the spaced-apart reaction regions.
- 32. The instrument of claim 31, wherein the focusing lens is a Fresnel lens.
- 33. An instrument comprising:
a plurality of spaced-apart reaction regions; a light emitting diode source comprising more than one light emitting diode, wherein the light emitting diode source is capable of providing area light excitation beams to one or more of the plurality of spaced-apart reaction regions; an excitation beam focusing lens disposed along an excitation beam path between the light emitting diode source and the plurality of reaction regions, wherein the excitation beam focusing lens is capable of focusing the area light excitation beams into one or more of the plurality of reaction regions; and an emission beam focusing lens along an emission beam path.
- 34. The instrument of claim 33, wherein at least one of the excitation beam focusing lens and the emission beam focusing lens is a Fresnel lens.
- 35. The instrument of claim 33, wherein the excitation beam focusing lens and the emission beam focusing lens are the same focusing lens.
- 36. An instrument of claim 33, further comprising a condensing lens disposed along the excitation beam path between the light emitting diode source and the excitation beam focusing lens.
- 37. The instrument of claim 33, wherein a sample is disposed in at least one of the plurality of reaction regions, and wherein the sample includes a dye that is capable of emitting an emission beam when illuminated with excitation beams.
- 38. The instrument of claim 37, wherein the sample comprises components for a nucleic acid amplification reaction.
- 39. The instrument of claim 33, wherein the plurality of reaction regions comprises 96 reaction regions.
- 40. The instrument of claim 33, wherein each light emitting diode has a wattage of greater than about 1 microwatt.
- 41. The instrument of claim 33, wherein each light emitting diode has a wattage of about 5 microwatts or greater.
- 42. The instrument of claim 33, wherein there is a correspondence of one to at least two between the light emitting diode source and the plurality of reaction regions.
- 43. The instrument of claim 33, wherein there is a correspondence of one to at least four between the light emitting diode source and the plurality of reaction regions.
- 44. The instrument of claim 33, wherein the light emitting diode source includes an organic light emitting diode.
- 45. An instrument comprising:
a plurality of spaced-apart reaction regions; a solid state laser source comprising more than one solid state laser, wherein the solid state laser source is capable of providing area light excitation beams to one or more of the plurality of spaced-apart reaction regions; an excitation beam focusing lens disposed along an excitation beam path between the solid state laser source and the plurality of reaction regions, wherein the excitation beam focusing lens is capable of focusing the area light excitation beams into one or more of the plurality of reaction regions; and an emission beam focusing lens along an emission beam path.
- 46. The instrument of claim 45, wherein at least one of the excitation beam focusing lens and the emission beam focusing lens is a Fresnel lens.
- 47. The instrument of claim 45, wherein the excitation beam focusing lens and the emission beam focusing lens are the same focusing lens.
- 48. An instrument comprising:
a plurality of spaced-apart reaction regions; a micro-wire laser source comprising more than one micro-wire laser, wherein the micro-wire laser source is capable of providing area light excitation beams to one or more of the plurality of spaced-apart reaction regions; an excitation beam focusing lens disposed along an excitation beam path between the micro-wire laser source and the plurality of reaction regions, wherein the excitation beam focusing lens is capable of focusing the area light excitation beams into one or more of the plurality of reaction regions; and an emission beam focusing lens along an emission beam path.
- 49. The instrument of claim 48, wherein at least one of the excitation beam focusing lens and the emission beam focusing lens is a Fresnel lens.
- 50. The instrument of claim 48, wherein the excitation beam focusing lens and the emission beam focusing lens are the same focusing lens.
- 51. A method of illuminating a plurality of spaced-apart reaction regions with excitation beams, the method comprising:
providing a light emitting diode source comprising more than one light emitting diode; generating area light excitation beams with the light emitting diode source; and passing the area light excitation beams through a first focusing lens to simultaneously focus the area light excitation beams into one or more of the plurality of reaction regions.
- 52. The method of claim 51, wherein the first focusing lens is a Fresnel lens.
- 53. The method of claim 51, wherein at least one of the plurality of reaction regions includes a sample capable of emitting emission beams when illuminated by the excitation beams, and the method further includes:
transmitting the emission beams through a second focusing lens; detecting the emission beams transmitted through the second focusing lens; and generating primary data signals representative of the emission beams.
- 54. The method of claim 53, wherein the second focusing lens is a Fresnel lens.
- 55. The method of claim 53, wherein the first focusing lens and the second focusing lens are the same focusing lens.
- 56. The method of claim 53, wherein the sample comprises components for nucleic acid sequence amplification.
- 57. The method of claim 51, wherein the light emitting diode source is capable of simultaneously illuminating at least two of the reaction regions.
- 58. The method of claim 51, wherein the light emitting diode source is capable of simultaneously illuminating at lest four of the reaction regions.
- 59 The method of claim 51, wherein the light emitting diode source includes an organic light emitting diode.
- 60. A method of illuminating a plurality of spaced-apart reaction regions with excitation beams, the method comprising:
providing a solid state laser source; generating area light excitation beams with the solid state laser source to form at least two spaced-apart excitation beams; and passing each of the spaced-apart excitation beams through a focusing lens to simultaneously focus each excitation beam into a respective one or more of the plurality of reaction regions.
- 61. The method of claim 60, wherein the solid state laser source comprises two or more solid state lasers.
- 62. A method of illuminating a plurality of spaced-apart reaction regions with excitation beams, the method comprising:
providing a micro-wire laser source; generating excitation beams with the micro-wire laser source to form at least two spaced-apart excitation beams; and passing each of the spaced-apart excitation beams through a focusing lens to simultaneously focus each excitation beam into a respective one or more of the plurality of reaction regions.
- 63. The method of claim 62, wherein the micro-wire laser source comprises two or more micro-wire lasers.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims benefit under 35 U.S.C. § 119(e) from earlier filed U.S. Provisional Patent Application No. 60/381,671, filed May 17, 2002, U.S. Provisional Patent Application No. 60/409,152, filed Sep. 9, 2002, and U.S. Provisional Patent Application No. 60/450,734, filed Feb. 28, 2003. The present Application is a continuation-in-part of co-pending U.S. patent application Ser. No. 10/216,620, filed August 9, 2002, which is a continuation of co-pending U.S. patent application Ser. No. 09/700,536, filed Nov. 29, 2001, which claims priority from PCT Patent Application No. PCT/US99/11088, filed May 17, 1999, which published as publication number WO 99/60381. Cross-reference is made to co-pending U.S. patent application Ser. No. ______ entitled “Apparatus and Method for Differentiating Multiple Fluorescence Signals by Excitation Wavelength” to King et al. (Attorney Docket No. 5010-042-01), and to U.S. patent application Ser. No. ______ entitled “Optical Instrument Including Excitation Source” to Boege et al. (Attorney Docket No. 5010-042-01), both filed the same day as the present Application. All Patents, Patent Applications, and publications mentioned herein are incorporated herein in their entireties by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60381671 |
May 2002 |
US |
|
60409152 |
Sep 2002 |
US |
|
60450734 |
Feb 2003 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09700536 |
Nov 2001 |
US |
Child |
10216620 |
Aug 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10216620 |
Aug 2002 |
US |
Child |
10440920 |
May 2003 |
US |