Claims
- 1. A method, comprising:
guiding optical radiation in both a first propagation mode and a second, different propagation mode through an optical waveguide towards a sample; directing radiation in the first propagation mode away from the sample without reaching the sample; directing radiation in the second propagation mode to interact with the sample to produce returned radiation from the interaction; coupling both the returned radiation in the second propagation-mode and the radiation in the first propagation mode into the optical waveguide away from the sample; and using the returned radiation in the second propagation mode and the radiation in the first propagation mode from the optical waveguide to extract information of the sample.
- 2. The method as in claim 1, wherein the first propagation mode and the second propagation mode are two polarization modes that are orthogonal to each other.
- 3. The method as in claim 2, wherein the first propagation mode and the second propagation mode are two orthogonal linear polarization modes.
- 4. The method as in claim 1, wherein the waveguide is a polarization maintaining fiber.
- 5. The method as in claim 1, further comprising adjusting a relative phase delay between the radiation in the first propagation mode and the radiation in the second propagation mode that are directed in the optical waveguide away from the sample to select a layer of the sample to measure.
- 6. The method as in claim 5, further comprising modulating the relative phase delay at a modulation frequency in measuring the sample.
- 7. The method as in claim 5, further comprising:
adjusting the relative phase delay to a first value to measure a first signal associated with a first layer within the sample; adjusting the relative phase delay to a second, different value to measure a second signal associated with a second layer within the sample; and obtaining a ratio between the first and the second signals to extract information about a layer of the sample located between the first and the second layers.
- 8. The method as in claim 7, further comprising using a tunable optical bandpass filter to filter the radiation to obtain a spectral response of the layer of the sample located between the first and the second layers.
- 9. The method as in claim 7, further comprising using the ratio to measure a concentration of glucose in a dermis layer of a skin tissue when used as the sample.
- 10. The method as in claim 1, further comprising controlling a spectral property of the radiation in the first and the second propagation modes to obtain spectral information of the sample.
- 11. The method as in claim 1, further comprising using a tunable optical bandpass filter to select a center wavelength of a spectral range of the radiation to the sample to obtain a spectral response of the sample in the spectral range.
- 12. The method as in claim 1, further comprising using a tunable optical bandpass filter to select a center wavelength of a spectral range of the radiation directed through the waveguide away from the sample to obtain a spectral response of the sample in the spectral range.
- 13. The method as in claim 1, further comprising:
mixing energy of the first propagation mode and the second propagation mode to produce a first optical signal and a second optical signal; and detecting the first and second optical signals to extract the information of the sample.
- 14. The method as in claim 13, further comprising using a difference between the first optical signal and the second optical signal to extract the information of the sample.
- 15. The method as in claim 14, further comprising:
modulating a relative phase delay between the radiation in the first propagation mode and the radiation in the second propagation mode that are directed in the optical waveguide away from the sample at a modulation frequency; and using information on amplitudes of the difference at the modulation frequency and a harmonic of the modulation frequency to extract the information of the sample.
- 16. The method as in claim 13, further comprising:
separating different optical spectral components in the first optical signal; measuring the different optical spectral components in the first optical signal; separating different optical spectral components in the second optical signal; measuring the different optical spectral components in the second optical signal; and using the measurements to obtain a spectral response of the sample at a spectral component selected from the different optical spectral components.
- 17. The method as in claim 16, further comprising using an optical grating to separate the different optical spectral components in the fist optical signal by optical diffraction.
- 18. The method as in claim 1, further comprising:
adjusting a relative phase delay between the radiation in the first propagation mode and the radiation in the second propagation mode that are directed in the optical waveguide away from the sample to a value to select a layer from which a reflection component in the returned radiation in the second propagation mode substantially matches the radiation in the first propagation mode in phase; modulating the relative phase around the value at a modulation frequency to obtain a measurement; and processing the measurement to obtain information on the layer.
- 19. The method as in claim 18, further comprising:
using an optical delay device to produce and adjust the relative phase delay; and using an optical delay modulator to modulate the relative phase.
- 20. The method as in claim 1, further comprising adjusting a relative lateral position between the radiation in the second propagation mode and the sample to direct the radiation to reach different locations on the sample to obtain information at the different locations.
- 21. The method as in claim 1, further comprising converting the optical radiation in the first and the second propagation modes, at least in part, to a pair of new propagation modes; and
detecting the intensities of the pair of the new propagation modes to extract information about the sample.
- 22. The method as in claim 1, wherein the first and the second propagation modes are two orthogonal linear polarization modes, the method further comprising:
using a polarizer to partially mix the first and the second propagation modes to produce an optical signal in a new linear polarization mode; and detecting the optical signal to obtain the information of the sample.
- 23. A device for optically measuring a sample, comprising:
a waveguide, which supports a first propagation mode and a second, different propagation mode, to receive and guide an input beam in both the first and the second propagation modes; a probe head coupled to the waveguide to receive the input beam and to reflect a first portion of the input beam in the first propagation mode back to the waveguide in the first propagation mode and direct a second portion of the input beam in the second propagation mode to a sample, the probe head collecting reflection of the second portion from the sample and exporting to the waveguide the reflection as a reflected second portion in the second propagation mode; and a detection module to receive the reflected first portion and the reflected second portion in the waveguide and to extract information of the sample carried by the reflected second portion.
- 24. The device as in claim 23, further comprising:
an optical delay device in an optical path of the reflected first and second portions to produce a relative phase delay between the reflected first and second portions; and an optical delay modulator in the optical path of the reflected first and second portions to modulate the relative phase.
- 25. The device as in claim 23, further comprising an optical delay modulator in an optical path of the reflected first and second portions to produce a relative phase delay between the reflected first and second portions and to modulate the relative phase.
- 26. The device as in claim 23, further comprising a variable optical delay unit in an optical path of the reflected first and second portions to produce a variable relative phase delay between the reflected first and second portions, wherein the variable optical delay unit comprises:
a mode splitting unit to separate the reflected first portion in the first propagation mode and the second portion in the second propagation mode into a first optical path and a second optical path, respectively; and a variable optical delay element in one of the first and the second optical paths to adjust an optical path length.
- 27. The device as in claim 26, wherein the variable optical delay element comprises:
a beam splitter to receive an input light beam to be delayed and to transmit a portion of the input light beam; a transparent plate to receive transmitted light from the beam splitter and to rotate to change a path length of the transmitted light; and a mirror to reflect light transmitted through the transparent plate back to the transparent plate to reach the beam splitter which reflects light from the transparent plate as a delayed output.
- 28. The device as in claim 26, wherein the variable optical delay element comprises:
an optical circulator to receive an input light beam to be delayed at a first port and to direct the input light beam to a second port, a transparent plate to receive light from the second port of the optical circulator and to rotate to change a path length of the light transmitting therethrough; and a mirror to reflect light transmitted through the transparent plate back to the transparent plate to reach the second optical port of the optical circulator which directs light from the second port to a third port as a delayed output.
- 29. The device as in claim 26, wherein the variable path length element comprises a fiber and a fiber stretcher engaged to the fiber to change a length of the fiber.
- 30. The device as in claim 26, wherein the variable path length element comprises two optical collimators and a movable retro-reflector in an optical path linking the two optical collimators.
- 31. The device as in claim 26, wherein the variable path length element comprises two optical collimators, and an optical plate and a reflector in an optical path linking the two optical collimators, wherein the optical plate rotates to change a path length of light.
- 32. The device as in claim 23, further comprising a variable optical delay unit in an optical path of the reflected first and second portions to produce a variable relative phase delay between the reflected first and second portions, wherein the variable optical delay unit comprises at least one tunable birefringent material and at least one fixed birefringent material.
- 33. The device as in claim 32, wherein the tunable birefringent material comprises a liquid crystal.
- 34. The device as in claim 32, wherein the tunable birefringent material comprises an electro-optic birefringent material.
- 35. The device as in claim 23, wherein the detection module comprises an optical detector.
- 36. The device as in claim 35, wherein the detection module further comprises an optical polarizer to receive and mix the reflected first and second portions to produce an optical output to the optical detector.
- 37. The device as in claim 36, further comprising an electronic unit to process output from the optical detector and process the output to extract the information of the sample.
- 38. The device as in claim 23, wherein the detection module comprises:
an optical polarizing beam splitter to receive and mix the reflected first and second portions that are respectively in the first and the second propagation modes to produce a first optical signal and a second optical signal; a first optical detector to receive the first optical signal; a second optical detector to receive the second optical signal; and an electronic unit to receive and process outputs from the first and the second optical detectors to extract the information of the sample.
- 39. The device as in claim 38, wherein the first and second optical detectors are first and second detector arrays, respectively, the device further comprising:
a first grating to receive and diffract the first optical signal; a first lens to focus different diffraction components in the first optical signal to different locations on the first detector array; a second grating to receive and diffract the second optical signal; and a second lens to focus different diffraction components in the second optical signal to different locations on the second detector array.
- 40. The device as in claim 23, wherein the probe head comprises:
a mode-selective reflector to select the first portion of the input beam in the first propagation mode to reflect and to select the second portion of the input beam in the second propagation mode to transmit to the sample.
- 41. The device as in claim 40, wherein the first and the second propagation modes are orthogonal linear polarization modes, wherein the mode-selective reflector comprises:
a polarization beam splitter which transmits light in the second propagation mode to the sample and reflects light in the first propagation mode; and a reflector positioned to reflect the light in the first propagation mode back to the polarization beam splitter.
- 42. The device as in claim 40, wherein the probe head further comprises a lens system between the waveguide and the mode-selective reflector.
- 43. The device as in claim 23, wherein the waveguide is a polarization maintaining waveguide.
- 44. The device as in claim 23, wherein the waveguide is a polarization maintaining fiber.
- 45. The device as in claim 23, further comprising:
a light source to produce the input beam; an input waveguide to receive the input beam from the light source and to guide the input beam; an output waveguide to receive the reflected first and second portions from the waveguide and to direct the reflected first and second portions to the detection module; and an optical router coupled to the input waveguide, the waveguide, and the output waveguide and operable to direct light coming from the input waveguide to the waveguide and to direct light coming from the waveguide to the output waveguide.
- 46. The device as in claim 45, wherein the optical router is an optical circulator.
- 47. The device as in claim 45, wherein the optical router is a polarization preserving optical circulator.
- 48. The device as in claim 45, further comprising a tunable optical filter located in one of the input waveguide, the waveguide, and the output waveguide to select a portion of the spectral response of the sample to measure.
- 49. The device as in claim 23, further comprising a tunable optical filter to filter the input beam to select a portion of the spectral response of the sample to measure.
- 50. The device as in claim 23, further comprising a tunable optical filter to filter the reflected first and second portions to select a portion of the spectral response of the sample to measure.
- 51. The device as in claim 23, further comprising a mechanism to change a lateral relative position between the probe head and the sample to direct the second portion to different locations of the sample.
- 52. A device for optically measuring a sample, comprising:
an input waveguide, which supports a first propagation mode and a second, different propagation mode, to receive and guide an input beam in both the first and the second propagation modes; an output waveguide, which supports the first and the second propagation modes; a probe head coupled to the input waveguide to receive the input beam and to the output waveguide, the probe head operable to direct a first portion of the input beam in the first propagation mode into the output waveguide in the first propagation mode and direct a second portion of the input beam in the second propagation mode to a sample, the probe head collecting reflection of the second portion from the sample and exporting to the output waveguide the reflection as a reflected second portion in the second propagation mode; and a detection module to receive the reflected first portion and the reflected second portion in the output waveguide and to extract information of the sample carried by the reflected second portion.
- 53. The device as in claim 52, further comprising:
an optical delay device in an optical path of the reflected first and second portions to produce a relative phase delay between the reflected first and second portions; and an optical delay modulator in the optical path of the reflected first and second portions to modulate the relative phase.
- 54. The device as in claim 52, further comprising an optical delay modulator in an optical path of the reflected first and second portions to produce a relative phase delay between the reflected first and second portions and to modulate the relative phase.
- 55. The device as in claim 52, further comprising a variable optical delay unit in an optical path of the reflected first and second portions to produce a variable relative phase delay between the reflected first and second portions, wherein the variable optical delay unit comprises:
a mode splitting unit to separate the reflected first portion in the first propagation mode and the second portion in the second propagation mode into a first optical path and a second optical path, respectively; and a variable optical delay element in one of the first and the second optical paths to adjust an optical path length.
- 56. The device as in claim 52, wherein the detection module comprises:
an optical polarizing beam splitter to receive and mix the reflected first and second portions that are respectively in the first and the second propagation modes to produce a first optical signal and a second optical signal; a first optical detector to receive the first optical signal; a second optical detector to receive the second optical signal; and an electronic unit to receive and process outputs from the first and the second optical detectors to extract the information of the sample.
- 57. The device as in claim 56, wherein the first and second optical detectors are first and second detector arrays, respectively, the device further comprising:
a first grating to receive and diffract the first optical signal; a first lens to focus different diffraction components in the first optical signal to different locations on the first detector array; a second grating to receive and diffract the second optical signal; and a second lens to focus different diffraction components in the second optical signal to different locations on the second detector array.
- 58. The device as in claim 52, wherein the probe head comprises:
a mode-selective reflector to select the first portion of the input beam in the first propagation mode to reflect and to select the second portion of the input beam in the second propagation mode to transmit to the sample.
- 59. The device as in claim 58, wherein the first and the second propagation modes are orthogonal linear polarization modes, wherein the mode-selective reflector comprises:
a polarization beam splitter which transmits light in the second propagation mode to the sample and reflects light in the first propagation mode; and a reflector positioned to reflect the light in the first propagation mode back to the polarization beam splitter.
- 60. The device as in claim 58, wherein the probe head further comprises a lens system between the waveguide and the mode-selective reflector.
- 61. The device as in claim 52, wherein the waveguide is a polarization maintaining waveguide.
- 62. The device as in claim 52, wherein the waveguide is a polarization maintaining fiber.
- 63. The device as in claim 52, further comprising a tunable optical filter located in one of the input waveguide and the output waveguide to select a portion of the spectral response of the sample to measure.
- 64. The device as in claim 52, further comprising a mechanism to change a lateral relative position between the probe head and the sample to direct the second portion to different locations of the sample.
Parent Case Info
[0001] This application claims the benefits of the following four U.S. Provisional Applications:
[0002] 1. Ser. No. 60/475,673 entitled “Method and Apparatus for Acquiring Images of Optical Inhomogeneity in Substances” and filed Jun. 4, 2003;
[0003] 2. Ser. No. 60/514,768 entitled “Coherence-Gated Optical Glucose Monitor” and filed Oct. 27, 2003;
[0004] 3. Ser. No. 60/526,935 entitled “Method and Apparatus for Acquiring Images of Optical Inhomogeneity in Substances” and filed Dec. 4, 2003; and
[0005] 4. Ser. 60/561,588 entitled “Acquiring Information of Optical Inhomogeneity and Other Properties in Substances” and filed Apr. 12, 2004.
[0006] The entire disclosures of the above-referenced applications are incorporated herein by reference as part of this application.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60475673 |
Jun 2003 |
US |
|
60514768 |
Oct 2003 |
US |
|
60526935 |
Dec 2003 |
US |
|
60561588 |
Apr 2004 |
US |