Claims
- 1. An optical delay line apparatus, comprising:
an optical input; an optical output; and a plurality of optical elements in optical communication with each other, wherein said plurality of optical elements are used to guide an optical signal having an optical spectrum from said optical input to said optical output, wherein at least one of said plurality of optical elements is used to spatially disperse the optical spectrum of the optical signal, and wherein at least one of said plurality of optical elements is adjustable to affect the phase delay and the group delay of the optical signal between said optical input and said optical output.
- 2. The optical delay line apparatus of claim 1 wherein said optical input and said optical output are the same.
- 3. The optical delay line apparatus of claim 2 wherein said plurality of optical elements further comprises:
a spectrally dispersive element in optical communication with said optical input, said dispersive element spatially dispersing the optical signal in response to the optical spectrum of the optical signal; an optical imaging module in optical communication with said dispersive element, said optical imaging module receiving a dispersed optical signal from said dispersive element; and a reflective element in optical communication with said optical imaging module.
- 4. The optical delay line apparatus of claim 3 wherein said dispersive element angularly disperses the optical spectrum of the optical signal into spectral components, said optical imaging module produces an image of the angularly dispersed optical signal at said reflective element, said reflective element rotates about an axis which is displaceable from a central wavelength of the image to adjust the phase delay, and the angle of said reflective element is alterable to adjust the group delay.
- 5. The optical delay line apparatus of claim 3 wherein said dispersive element is a diffraction grating and wherein the group delay is adjusted by altering the angle of said grating.
- 6. The optical delay line apparatus of claim 3 wherein said dispersive element is a diffraction grating and the optical signal impinges on said diffraction grating at an angle of incidence, and wherein the group delay of the optical signal is adjusted by altering the angle of incidence.
- 7. The optical delay line apparatus of claim 3 wherein said dispersive element has a spatially periodic structure which spatially disperses wavelength components of the optical spectrum of the optical signal and wherein the group delay is adjusted by altering the spatially periodic structure of said dispersive element.
- 8. The optical delay line apparatus of claim 3 wherein said dispersive element comprises an acousto-optic modulator having an adjustable spatially periodic structure which varies in response to a radio frequency drive waveform received by said acousto-optic modulator.
- 9. The optical delay line apparatus of claim 8 wherein said radio frequency drive waveform is repetitively altered to produce a repetitive and substantially constant rate of change of the group delay.
- 10. The optical delay line apparatus of claim 8 wherein said radio frequency drive waveform is repetitively altered to produce a repetitive change in group delay with a substantially constant optical throughput efficiency.
- 11. The optical delay line apparatus of claim 3 wherein said reflective element is a rotating polygon mirror.
- 12. An optical interferometric imaging system, comprising:
an optical source producing an optical signal having a broad bandwidth optical spectrum, said optical signal in optical communication with an interferometer; an optical delay line apparatus; a sample; and a detector, wherein said interferometer has an input in optical communication with said optical source, wherein said interferometer is in optical communication with said optical delay line apparatus, said optical delay line apparatus comprising:
an optical input; an optical output; and a plurality of optical elements in optical communication with each other, wherein said plurality of optical elements are used to guide the optical signal from said optical input to said optical output; wherein at least one of said plurality of optical elements is used to spatially disperse the optical spectrum of the optical signal, and wherein at least one of said plurality of optical elements is adjustable to affect the phase delay and the group delay of the optical signal between said optical input and said optical output, wherein said interferometer is also in optical communication with a sample, and wherein said interferometer has an optical output that is coupled to a detector, said detector being in electrical communication with a processor, said processor producing images of optical microstructural properties of said sample.
- 13. The imaging system of claim 12 wherein at least one adjustable optical element repeatedly scans to produce a substantially uniform rate of change of optical group delay and a time varying optical phase delay, and wherein said processor compensates for the time varying optical phase delay.
- 14. An optical delay line apparatus comprising:
an optical input; an optical output; and a plurality of optical elements in optical communication with each other, wherein said plurality of optical elements guide an optical signal having an optical spectrum from said optical input to said optical output, wherein at least one of said plurality of optical elements spatially disperses the optical spectrum of the optical signal, wherein at lest one of said plurality of optical elements is adjustable to adjust the group delay of the optical signal between said optical input and said optical output, and wherein said delay line has the property that upon interferometrically combining the optical signal transmitted through said optical delay line with a portion of the optical signal not transmitted through said optical delay line and photodetection of the interferometrically combined optical signal, a non-zero frequency heterodyne signal is achieved.
- 15. The apparatus of claim 14 used in conjunction with an interferometric imaging system that requires the scanning of optical group delay in order to perform imaging of optical properties of a sample.
- 16. The apparatus of claim 15 wherein said adjustable optical element is repetitively scanned and said imaging system has a signal processing unit that compensates any non-uniform rate-of-change of phase delay.
- 17. The apparatus and system of claim 15 wherein said interferometric imaging system comprises a reference arm, a sample arm, and an output, wherein said reference arm is coupled to said optical delay line apparatus, and wherein said plurality of optical elements further comprises:
a spatially dispersive element in optical communication with said optical input, said dispersive element spatially dispersing the optical signal in response to the optical spectrum of the optical signal; an optical imaging module in optical communication with said dispersive element, said optical imaging module receiving a dispersed optical signal from said dispersive element; and a reflective element in optical communication with said optical imaging module, said reflective optical element placed away from the Fourier plane of the dispersed optical spectrum so as to balance first order group velocity dispersion between said sample and reference arms.
- 18. The apparatus of claim 17 wherein said spatially dispersive element comprises a diffractive element.
- 19. The apparatus of claim 18 wherein said reflective element comprises a scanning mirror in optical communication with said diffractive element.
- 20. The apparatus of claim 18 wherein said diffractive element comprises an angularly adjustable grating.
- 21. The apparatus of claim 14 further comprising an acousto-optic modulator in optical communication with said optical delay line.
- 22. The apparatus of claim 14 further comprising an electro-optic beam deflector in optical communication with said optical delay line.
- 23. The apparatus of claim 14 wherein said adjustable optical element comprises a polygon scanning mirror.
- 24. The apparatus of claim 14 wherein said spatially dispersive element has a periodic optical structure with an adjustable period, said spatially dispersive element angularly dispersing the optical signal.
- 25. The apparatus of claim 14 wherein said spatially dispersive element comprises a holographic optical element.
- 26. An apparatus for performing scanning of an optical delay of an optical signal, wherein the apparatus permits control of optical group delay using adjustable optical elements that spatially disperse the various wavelength components of the optical spectrum of the optical signal such that upon interferometrically combining the delayed optical signal with a portion of the optical signal not transmitted though said apparatus and photodetection of the interferometrically combined signal, a zero frequency heterodyne or homodyne signal is achieved,
wherein said optical delay line apparatus is used in conjunction with an OCT imaging system, said OCT imaging system comprising an optical source coupled to an interferometer, said interferometer coupled to said optical delay line apparatus input and output ports, said interferometer also coupled to a sample via a probe module, said interferometer also coupled to at least one photodetector, said photodetector coupled to a signal processing and control unit, said signal processing and control unit producing images of microstructural properties of the sample.
- 27. An optical delay line comprising:
a spatially dispersive element receiving a beam of incident light having an optical spectrum and dispersing the beam of incident light into spectral components; an optical imaging module in optical communication with said spatially dispersive element, said optical imaging module receiving the dispersed beam of incident light; and a reflective element in optical communication with said optical imaging module, said reflective element receiving light imaged by said optical imaging module and being adjustable to affect phase delay and group delay of the beam of incident light.
- 28. The optical delay line of claim 27 wherein the light received by said reflective element is reflected back through said optical imaging module to said spatially dispersive element.
- 29. The optical delay line apparatus of claim 1 wherein said optical delay line apparatus is used in conjunction with an OCT imaging system, said OCT imaging system comprising an optical source coupled to an interferometer, said interferometer coupled to said optical delay line apparatus input and output, said interferometer also coupled to a sample via a probe module, said interferometer also coupled to at least one photodetector, said photodetector coupled to a signal processing and control unit, said signal processing and control unit producing images of said samples optical microstructural properties.
- 30. An apparatus for performing optical coherence tomography, comprising:
an optical source producing an optical signal having an optical spectrum; and an interferometer having an input in optical communication with said optical source, an optical combiner, a sample arm for transmitting a first portion of the optical signal to a sample and receiving the scattered signal from the sample, a reference arm and an output, wherein said reference arm comprises an optical delay line, said optical delay line comprising:
an optical input port adapted to receive an optical signal having an optical spectrum; a plurality of optical elements in optical communication with each other, one of said plurality of optical elements being in optical communication with said optical input port and receiving the optical signal from said optical input port, and at least one of said plurality of optical elements spatially dispersing the optical spectrum of the optical signal; and an optical output port receiving the spatially dispersed optical signal from said plurality of optical elements; wherein at least one of said plurality of optical elements is adjustable to independently affect phase delay and group delay of the optical signal; a detector in optical communication with said output of said interferometer; and a processor in electrical communication with said detector; wherein the second portion of the optical signal from said reference arm is combined at said combiner with the first portion of the optical signal from said sample arm, the combined signal generating a homodyne signal at said detector, and said processor produces structural images of the sample.
- 31. An optical delay line comprising:
an optical input; an optical output; and a plurality of optical elements in optical communication with each other, wherein at least one of said plurality of optical elements is in optical communication with said optical input and receives an optical signal from said optical input, wherein at least one of said plurality of optical elements spatially disperses the optical spectrum of the received optical signal, wherein at least one of said plurality of optical elements is in optical communication with said spatially dispersed optical spectrum, wherein at least one of said plurality of optical elements is in optical communication with said optical output and delivers the optical signal to said optical output, and wherein at least one of said plurality of optical elements is adjustable to affect phase delay and group delay of the optical signal between said optical input and said optical output.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to co-pending to provisional patent application Ser. No. 60/046,739, filed May 16, 1997, the entirety of which is incorporated herein by reference.
GOVERNMENT SUPPORT
[0002] This invention was made with government support under Contract. No. NIH-RO1-EY11289-10 awarded by the National Institutes of Health, Contract No. N00014-94-1-0717 awarded by the U.S. Office of Naval Research, and Contract No. F49620-95-1-0221 awarded by the U.S. Air Force Office of Scientific Research. The government has certain rights in the invention.
Provisional Applications (1)
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60046739 |
May 1997 |
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Divisions (2)
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Parent |
09079687 |
May 1998 |
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Child |
09603806 |
Jun 2000 |
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Parent |
08607787 |
Feb 1996 |
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Child |
09603806 |
Jun 2000 |
US |
Continuations (3)
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09603806 |
Jun 2000 |
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09880120 |
Jun 2001 |
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08492738 |
Jun 1995 |
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08916759 |
Aug 1997 |
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07692877 |
Apr 1991 |
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08033194 |
Mar 1993 |
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Continuation in Parts (4)
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08252940 |
Jun 1994 |
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08607787 |
Feb 1996 |
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08916759 |
Aug 1997 |
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08607787 |
Feb 1996 |
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08033194 |
Mar 1993 |
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08492738 |
Jun 1995 |
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