Claims
- 1. An optical sensing platform for detecting and/or measuring the amount of a substance in a sample using an interferometric surface detection technique, the platform comprising:
at least one pair of optical channels, comprising:
a first optical channel having an upper measurement surface for contact with the sample, and a second optical channel having an upper surface for contact with a reference sample; a light source for introducing optical beams into the at least one pair of optical channels; a light modulator; and a phase detector for detecting optical phase differences between the respective optical beams from the at least one pair of first and second optical channels.
- 2. The optical sensing platform as recited in claim 1, wherein the substance is bound to a coating provided on the upper measurement surface.
- 3. The optical sensing platform as recited in claim 1, wherein at least one pair of optical channels is formed on a common waveguide.
- 4. The optical sensing platform as recited in claim 3, wherein the common waveguide is substantially planar.
- 5. The optical sensing platform as recited in claim 1, wherein the light modulator comprises a polarization modulator.
- 6. The optical sensing platform as recited in claim 1, wherein the light modulator comprises a device that enables exciting at least two unique guided modes in the at least one pair of optical channels.
- 7. The optical sensing platform as recited in claim 5, wherein the polarization modulator is selected from the group consisting of a ferro-electric liquid crystal, a pockel cell, and a photoelastic modulator.
- 8. The optical sensing platform as recited in claim 5, wherein the polarization modulator enables the excitation of at least two unique guided modes of the respective optical beams to propagate independently and sequentially through the at least one pair of optical channels.
- 9. The optical sensing platform as recited in claim 8, wherein the at least two unique guided modes of the respective optical beams propagating independently and sequentially through the at least one pair of optical channels comprise a transverse electric and a transverse magnetic excited mode.
- 10. The optical sensing platform as recited in claim 3, wherein the optical beams propagate through the at least one pair of optical channels of the waveguide as gaussian light beams substantially unconfined in the lateral direction.
- 11. The optical sensing platform as recited in claim 1, wherein the substance is selected from a group consisting of microorganisms, small molecules, and bio-molecules.
- 12. The optical sensing platform as recited in claim 2, wherein the substance is bound to the upper measurement surface using antibody probes.
- 13. The optical sensing platform as recited in claim 1, wherein the phase detector comprises a fringe imaging lens and a fringe detector, wherein the fringe imaging lens focuses a plurality of optical fringe patterns for a plurality of guided modes on the fringe detector from which a plurality of phase differences in refractive indices can be measured.
- 14. The optical sensing platform as recited in claim 1, wherein the phase detector is selected from the group consisting of a matched, multi-element phase array detector and an unmatched, charge-couple device detector. measured.
- 15. The optical sensing platform as recited in claim 1, wherein the detected optical phase differences comprise a plurality of first differential measurements and at least one second differential measurement for each pair of optical channels.
- 16. The optical sensing platform as recited in claim 15, wherein the detected optical phase differences in the plurality of first differential measurements are proportional to changes in the effective refractive indices (δn) between the at least one measurement sample and the at least one reference sample for the transverse electric mode, nTE=nTE measurement−nTE reference, and a transverse magnetic mode, nTM=nTM measurement−nTM reference
- 17. The optical sensing platform as recited in claim 16, wherein the detected optical phase difference in the effective refractive indices further comprises a second differential measurement between TE0 and TM0 excited modes, i.e., ΔN=nTE−nTM.
- 18. The optical sensing platform as recited in claim 1, further comprising:
a beam combiner to combine a plurality of respective optical beams coupled out of the at least one pair of first and second optical channels and provide the combined beams to the phase detector, and a computer to perform necessary mathematical operations and to store the results thereof, having software and database memory therefor.
- 19. A method for detecting and/or measuring the quantity of a substance in at least one measurement sample, the method comprising the steps of:
providing a device as set forth in claim 1; locating the at least one measurement sample, having a refractive index (nMEASUREMENT), and the at least one reference sample, having a refractive index (nREFERENCE), respectively, contiguous to an upper surface of at least one first optical channel and at least one second optical channel; introducing an optical beam from a light source into a light modulator, wherein the light modulator enables exciting a plurality of orthogonally polarized guided modes, which guided modes propagate sequentially in the at least one first optical channel and the at least one second optical channel; detecting a plurality of optical phase differences as a function of time using a phase detector, wherein the plurality of optical phase differences are produced by the plurality of orthogonally polarized guided modes; and performing at least one set of doubly differentiating measurements using the plurality of optical phase differences between the at least one measurement sample and the at least one reference sample.
- 20. The method as recited in claim 19, wherein the introducing step further comprises exciting the optical beam so that the plurality of orthogonally polarized guided modes comprises at least one transverse electric (TE) guided mode and at least one transverse magnetic (TM) guided mode.
- 21. The method as recited in claim 19, wherein the substance is selected from a group consisting of microorganisms, small molecules, and bio-molecules.
- 22. The method as recited in claim 19, wherein the step of performing at least one set of doubly differentiating measurements further comprises:
performing a set of first differential measurements, wherein the set of first differential measurements comprises detecting and/or measuring a plurality of phase differences for a transverse electric and a transverse magnetic excited modes; and performing a second differential measurement, wherein the second differential measurement comprises an overall difference between the phase differences detected for the transverse electric and the transverse magnetic guided modes in the respective first differential measurements.
- 23. The method as recited in claim 22, wherein the set of first differential measurement phase differences are proportional to changes in the respective effective refractive indices between said first and second optical channels, i.e., nTE=nTE measurement−nTE reference and nTM=nTM measurement−nTM reference.
- 24. The method as recited in claim 22, wherein the second differential measurement overall difference between the optical phase differences is proportional to the difference between the respective effective refractive indices of the transverse electric and transverse magnetic guided modes, i.e., ΔN=nTE−nTM.
- 25. The method as recited in claim 22, wherein detecting the plurality of optical phase differences between the phase differences of the reference with respect to the measurement sample for the transverse electric and transverse magnetic guided modes comprises the substeps of:
selectively sampling a pair of optical fringe patterns comprising an optical fringe pattern of the refractive index of a measurement sample and an optical fringe pattern of the refractive index of a reference sample measured at the same time, and detecting shifts in the optical fringe pattern of the measurement sample relative to the sampled fringe pattern of the reference sample using a fringe detector.
- 26. The method as recited in claim 24, wherein determining the overall difference between the phase differences of the transverse electric guided mode with respect to the transverse magnetic guided modes comprises the substeps of:
selectively sampling an optical fringe pattern derived from the refractive index of a measurement sample and an optical fringe pattern derived from the refractive index of a reference sample for the transverse electric guided mode and the transverse magnetic guided mode; detecting shifts in fringe positions of the phase of the measurement sample relative to that of the reference sample for the transverse electric guided mode and the transverse magnetic guided mode using a phase detector; and subtracting the phase difference of the transverse electric guided mode from the phase difference of to the transverse magnetic guided mode.
- 27. The method as recited in claim 20, wherein detecting a plurality of optical phase differences comprises:
detecting an optical phase difference in refractive indices between the at least one measurement sample and the at least one reference sample for a transverse electric guided mode, and detecting an optical phase difference in refractive indices between the at least one measurement and the at least one reference samples for a transverse magnetic, guided mode.
CROSS REFERENCE OR RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/188,808 filed Mar. 13, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60188808 |
Mar 2000 |
US |