Claims
- 1. A method for imaging a sample comprising the steps of:
forming a low coherent optical radiation; splitting the low coherent optical radiation into a first low coherent optical radiation beam and a second low coherent optical radiation beam; directing the first low coherent optical radiation beam toward the sample along a bi-directional sampling optical path in a forward and backward direction; directing the second low coherent optical radiation beam along a unidirectional reference optical path in a forward direction; combining the optical radiation which passed along the sample optical path in a forward and backward direction, with the optical radiation which passed along the reference optical path in a forward direction; and visualizing the intensity of the optical radiation, which carries information about the sample as a result of having passed along the sample optical path in a forward and backward direction, wherein at least one signal of interference modulation of the intensity of the combined optical radiation is used.
- 2. The method of claim 1 further comprising the steps of changing the difference of the optical path length of the first low coherent optical radiation beam and the optical path length of the second low coherent optical radiation beam for in-depth scanning of the sample.
- 3. The method of claim 2, wherein the difference in the optical lengths of the optical paths for the first low coherent optical radiation beam and the second low coherent optical radiation beam is changed by at least several tens of wavelengths of low coherent optical radiation.
- 4. The method of claim 1 further comprising the step of scanning the first low coherent optical radiation beam directed to the sample in compliance with a predetermined rule over a surface which is substantially perpendicular to the direction of the propagation of the first low coherent optical radiation beam.
- 5. The method of claim 1 wherein the sample is a biological tissue.
- 6. The method of claim 5 wherein the sample is biotissue of a living body.
- 7. The method of claim 1, wherein the low coherent optical radiation is an optical radiation in the visible or near infrared range.
- 8. A method for imaging a sample, comprising the steps of:
forming a low coherent optical radiation; splitting the low coherent optical radiation into a first beam of low coherent optical radiation and a second beam of low coherent optical radiation; splitting the first beam of low coherent optical radiation into a third beam of low coherent optical radiation and a fourth beam of low coherent optical radiation; directing the third beam of low coherent optical radiation towards the sample under study along a bi-directional sampling optical path, wherein the first beam of low coherent optical radiation propagates along the bi-directional sampling optical path in a forward and a backward direction; directing the second beam of low coherent optical radiation and the fourth beam of low coherent optical radiation along a reference optical path, wherein the reference optical path is formed as a reference loop, the second beam of low coherent optical radiation passes through the reference loop in a first direction, and the fourth beam of low coherent optical radiation passes through the reference loop in a second direction; combining the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction; combining part of the resulting combination optical radiation with the optical radiation that has passed through the reference loop in the second direction; and visualizing the intensity of the optical radiation, that having passed along the sampling optical path carries information about the sample, by using either a signal of interference modulation of the intensity of the combination optical radiation resulting from the combination of the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction, or a signal of interference modulation of the intensity of the combination resulting from the optical radiation that has passed through the reference loop in the second direction and a part of the combination optical radiation of the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction, or both.
- 9. The method of claim 8, wherein the first direction through the reference loop is counter-clockwise and the second direction through the reference loop is clockwise.
- 10. An optical interferometer comprising:
a source of optical radiation; a first beam splitter; a sampling arm and a reference arm, wherein the sampling arm is bi-directional and the reference arm is unidirectional; a second beam splitter; and at least one photodetector connected to a port of the second beam splitter.
- 11. The optical interferometer of claim 10, wherein at least one of the arms of the optical interferometer comprises an optical delay line.
- 12. The optical interferometer of claim 10, wherein at least one of the arms of the optical interferometer comprises a phase modulator.
- 13. The optical interferometer of claim 10, wherein the sampling arm is provided with a probe located at its distal end.
- 14. The optical interferometer of claim 13, wherein at least a part of the sampling arm comprising the probe is designed fiberoptic.
- 15. The optical interferometer of claim 10, wherein at least one of the arms of the optical interferometer is designed fiberoptic.
- 16. The optical interferometer of claim 10, wherein at least one of the beam splitters is designed fiberoptic.
- 17. The optical interferometer of claim 13, wherein the probe is detachable and connected with the optical interferometer by a connecter.
- 18. The optical interferometer of claim 10, wherein the first beam splitter is designed nonreciprocal.
- 19. The optical interferometer of claim 10, wherein the first beam splitter is polarization-sensitive and the sampling arm is provided with a polarization switch.
- 20. An optical interferometer comprising:
a source of optical radiation; a first beam splitter; a sampling arm and a reference arm, wherein the sampling arm is bi-directional and the reference arm is formed as a loop; a second beam splitter, the first beam splitter being optically coupled to a sample through the ports of the second beam splitter; and at least one photodetector, wherein at least one of the beam splitters is connected to a respective photodetector.
- 21. The optical interferometer of claim 20, wherein at least one of the arms of the optical interferometer comprises an optical delay line.
- 22. The optical interferometer of claim 20, wherein at least one of the arms of the optical interferometer comprises a phase modulator.
- 23. The optical interferometer of claim 20, wherein the sampling arm is provided with a probe located at its distal end.
- 22. The optical interferometer of claim 23, wherein at least a part of the sampling arm comprising the probe is designed fiberoptic.
- 25. The optical interferometer of claim 20, wherein at least one of the arms of the optical interferometer is designed fiberoptic.
- 26. The optical interferometer of claim 20, wherein at least one of the beam splitters is designed fiberoptic.
- 27. The optical interferometer of claim 23, wherein the probe is made detachable and connected with the optical interferometer by a connecter.
- 28. The optical interferometer of claim 20, wherein the first beam splitter is designed nonreciprocal.
- 29. The optical interferometer of claim 20, wherein the first beam splitter is polarization-sensitive and the sampling arm is provided with a polarization switch.
- 30. An apparatus for imaging a sample, comprising:
means for forming a low coherent optical radiation; means for splitting the low coherent optical radiation into a first low coherent optical radiation beam and a second low coherent optical radiation beam; means for directing the first low coherent optical radiation beam, wherein the first beam propagates along a bi-directional sampling optical path in a forward and backward direction; means for directing the second low coherent optical radiation beam, wherein the second beam propagates along a unidirectional reference optical path in a forward direction; means for combining the optical radiation, which passed along the sampling optical path in a forward and backward direction, with the optical radiation, which passed along the reference optical path in a forward direction; and means for visualizing the intensity of the optical radiation, that having passed along the sampling optical path carries information about the sample, by using a signal of interference modulation of the intensity of the combination optical radiation resulting from the combination of the optical radiation that passed along the sampling optical path with the optical radiation that has passed along the reference optical path.
- 31. The apparatus of claim 30, further comprising means for changing the difference of the optical path length of the first low coherent optical radiation beam and the optical path length of the second low coherent optical radiation beam, wherein in-depth scanning of the sample under study is performed.
- 32. The apparatus of claim 31, wherein the difference in the optical lengths of the optical paths for the first low coherent optical radiation beam and the second low coherent optical radiation beam is changed by at least several tens of wavelengths of low coherent optical radiation.
- 33. The apparatus of claim 30, further comprising means for scanning the first low coherent optical radiation beam being directed to the sample in compliance with a predetermined rule over a surface which is approximately perpendicular to the direction of the propagation of the first low coherent optical radiation beam.
- 34. The apparatus of claim 30, wherein the sample under study is a biological tissue.
- 35. The apparatus of claim 34, wherein the biological tissue is lining the surfaces of cavities and internal organs of a living body.
- 36. The apparatus of claim 30, wherein the low coherent optical radiation is an optical radiation in the visible or near infrared range.
- 37. An apparatus for studying a sample, comprising:
means for forming a low coherent optical radiation; means for splitting the low coherent optical radiation into a first beam of low coherent optical radiation and a second beam of low coherent optical radiation; means for splitting the first beam of low coherent optical radiation into a third beam of low coherent optical radiation and a fourth beam of low coherent optical radiation; means for directing the third beam of low coherent optical radiation towards the sample under study along a bi-directional sampling optical path, wherein the first beam of low coherent optical radiation propagates along the bi-directional sampling optical path in a forward and a backward direction; means for directing the second beam of low coherent optical radiation and the fourth beam of low coherent optical radiation along a reference optical path, wherein the reference optical path is formed as a reference loop, the second beam of low coherent optical radiation passes through the reference loop in a first direction, and the fourth beam of low coherent optical radiation passes through the reference loop in a second direction; means for combining the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction; means for combining part of the resulting combination optical radiation with the optical radiation that has passed through the reference loop in the second direction; and means for visualizing the intensity of the optical radiation, that having passed along the sampling optical path carries information about the sample, by using either a signal of interference modulation of the intensity of the combination optical radiation resulting from the combination of the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction, or a signal of interference modulation of the intensity of the combination resulting from the optical radiation that has passed through the reference loop in the second direction and a part of the combination optical radiation of the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction, or both.
- 38. The apparatus of claim 37, wherein the first direction through the reference loop is counter-clockwise and the second direction through the reference loop is clockwise.
- 39. A method for imaging a sample, comprising the steps of:
forming a low coherent optical radiation; splitting the low coherent optical radiation into a first beam of low coherent optical radiation and a second beam of low coherent optical radiation; splitting the first beam of low coherent optical radiation into a third beam of low coherent optical radiation and a fourth beam of low coherent optical radiation; directing the third beam of low coherent optical radiation towards the sample under study along a bidirectional sampling optical path, wherein the first beam of low coherent optical radiation propagates along the bidirectional sampling optical path in a forward and a backward direction; directing the second beam of low coherent optical radiation and the fourth beam of low coherent optical radiation along a reference optical path, wherein the reference optical path is formed as a reference loop, the second beam of low coherent optical radiation passes through the reference loop in a first direction, and the fourth beam of low coherent optical radiation passes through the reference loop in a second direction; combining the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction; combining part of the resulting combination optical radiation with the optical radiation that has passed through the reference loop in the second direction; and visualizing the intensity of the optical radiation, that having passed along the sampling optical path carries information about the sample, by using a signal of interference modulation of the intensity of the combination optical radiation resulting from the combination of the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction.
- 40. A method for imaging a sample, comprising the steps of:
forming a low coherent optical radiation; splitting the low coherent optical radiation into a first beam of low coherent optical radiation and a second beam of low coherent optical radiation; splitting the first beam of low coherent optical radiation into a third beam of low coherent optical radiation and a fourth beam of low coherent optical radiation; directing the third beam of low coherent optical radiation towards the sample under study along a bi-directional sampling optical path, wherein the first beam of low coherent optical radiation propagates along the bidirectional sampling optical path in a forward and a backward direction; directing the second beam of low coherent optical radiation and the fourth beam of low coherent optical radiation along a reference optical path, wherein the reference optical path is formed as a reference loop, the second beam of low coherent optical radiation passes through the reference loop in a first direction, and the fourth beam of low coherent optical radiation passes through the reference loop in a second direction; combining the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction; combining part of the resulting combination optical radiation with the optical radiation that has passed through the reference loop in the second direction; and visualizing the intensity of the optical radiation, that having passed along the sampling optical path carries information about the sample, by using a signal of interference modulation of the intensity of the combination resulting from the optical radiation that has passed through the reference loop in the second direction and a part of the combination optical radiation of the optical radiation that passed along the sampling optical path with the optical radiation that has passed through the reference loop in the first direction.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on and claims priority to provisional U.S. patent application Ser. No. 60/356,798, which was filed on Feb. 14, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60356798 |
Feb 2002 |
US |