Optical sensing system and method of determining a change in a refractive index in an optical sensing system

US9581545B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9581545-B2
Application numberUS-201314434399-A
CountryUS
Kind codeB2
Filing dateOct 8, 2013
Priority dateOct 8, 2012
Publication dateFeb 28, 2017
Grant dateFeb 28, 2017

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Abstract

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An optical sensing system may include a light separation element configured to separate an input light into a plurality of sliced lights and a first resonator configured to receive one sliced light of the plurality of sliced lights. An effective refractive index of the first resonator may be changeable in response to a change in a refractive index of a cladding of the first resonator, a second resonator coupled to the first resonator and a detector configured to measure an intensity of the sliced light, the intensity of the sliced light based on a difference between a resonant wavelength of the first resonator and a resonant wavelength of the second resonator. The difference between a resonant wavelength of the first resonator and a resonant wavelength of the second resonator may be based on the effective refractive index of the first resonator.

First claim

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What is claimed is: 1. An optical sensing system, the optical sensing system comprising: a light separation element configured to separate an input light into a plurality of sliced lights, each sliced light of the plurality of sliced lights having a different range of wavelengths; a plurality of first resonators, each first resonator of the plurality of first resonators configured to receive one respective sliced light of the plurality of sliced lights, wherein an effective refractive index of each first resonator is changeable in response to a change in a refractive index of a cladding of the respective first resonator; and wherein at least one first resonator of the plurality of first resonators is configured to contact a sample so that a refractive index of a cladding of the at least one first resonator is changed as a result of the at least one first resonator brought into contact with the sample; at least one second resonator coupled to the plurality of first resonators; a plurality of detectors, wherein one respective detector of the plurality of detectors is configured to measure a respective intensity of the respective sliced light based on a difference between a resonant wavelength of each first resonator and a resonant wavelength of the at least one second resonator; wherein the difference between the resonant wavelength of each first resonator and the resonant wavelength of the at least one second resonator is based on the effective refractive index of each first resonator. 2. The optical sensing system according to claim 1 , wherein the resonant wavelength of the second resonator is adjustable to a current or voltage applied to the second resonator. 3. The optical sensing system of claim 2 , wherein each second resonator comprises a thermal heater, and wherein the current or voltage being adjustable in response to the change in the effective refractive index of the first resonator is applied to the heater. 4. The optical sensing system according to claim 1 , wherein the plurality of first resonators is coupled to the light separation element such that each first resonator of the plurality of first resonators is configured to receive one respective sliced light of the plurality of sliced lights. 5. The optical sensing system according to claim 4 , the optical sensing system further comprising: a plurality of channel waveguides, each first resonator of the plurality of first resonators coupled to one respective channel waveguide of the plurality of channel waveguides; wherein the respective channel waveguide is configured to couple the respective sliced light between the light separation element and the respective first resonator. 6. The optical sensing system according to claim 4 , the optical sensing system further comprising: a plurality of output waveguides; wherein one respective output waveguide of the plurality of output waveguides is coupled to each first resonator, the respective output waveguide configured to carry the respective sliced light from each first resonator; and wherein the respective detector is coupled to the respective output waveguide; wherein the respective detector is configured to receive the respective sliced light from the respective output waveguide. 7. The optical sensing system according to claim 4 , wherein the respective intensity of the respective sliced light is based on a respective difference between a respective resonant wavelength of each first resonator and the resonant wavelength of the second resonator; wherein the respective difference between the respective resonant wavelength of each first resonator and the resonant wavelength of the second resonator is based on a respective effective refractive index of the respective first resonator. 8. The optical sensing system according to claim 7 , wherein the respective effective refractive index of each first resonator is changeable in response to a change in a respective refractive index of a respective cladding of each first resonator. 9. The optical sensing system according to claim 4 , wherein the optical sensing system further comprises a coupling waveguide coupling the second resonator and the light separation element. 10. The optical sensing system according to claim 9 , the optical sensing system further comprising: an optical broadband source; and an input waveguide coupling the optical broadband source to the second resonator. 11. The optical sensing system according to claim 1 , the optical sensing system further comprising: one or more further second resonators such that the optical sensing system comprises a plurality of second resonators, the plurality of second resonators coupled to the light separation element such that each second resonator of the plurality of second resonators is configured to receive one respective sliced light of the plurality of sliced light. 12. The optical sensing system according to claim 11 , wherein one respective first resonator of the plurality of first resonators coupled to each second resonator such that the respective first resonator receives the respective sliced light from each second resonator. 13. The optical sensing system according to claim 12 , the optical sensing system further comprising: a plurality of coupling waveguides; wherein one respective coupling waveguide of the plurality of coupling waveguides couples between each second resonator and the respective first resonator, the respective coupling waveguide configured to carry the respective sliced light from each second resonator to the respective first resonator. 14. The optical sensing system according to claim 11 , the optical sensing system further comprising: a plurality of output waveguides; wherein one respective output waveguide of the plurality of output waveguides is coupled to the respective first resonator, the respective output waveguide configured to carry the respective sliced light from the respective first resonator; and wherein the respective detector is coupled to the respective output waveguide; wherein the respective detector is configured to receive the respective sliced light from the respective output waveguide. 15. The optical sensing system according to claim 11 , wherein the respective intensity of the respective sliced light is based on a respective difference between a respective resonant wavelength of the respective first resonator and a respective resonant wavelength of each second resonator; wherein the respective difference between the respective resonant wavelength of the respective first resonator and the respective resonant wavelength of each second resonator is based on a respective effective refractive index of the respective first resonator. 16. The optical sensing system according to claim 15 , wherein the respective effective refractive index of the respective first resonator is changeable in response to a change in a respective refractive index of a respective cladding of the respective first resonator. 17. The optical sensing system according to claim 11 , the optical sensing system further comprising: an optical broadband source; and an input waveguide coupling the optical broadband source to the light separation element. 18. A method of determining a change in an effective refractive index of one first resonator of a plurality of first resonators in an optical sensing system, the method comprising: separating an input light into a plurality of sliced lights, each sliced light of the plurality of sliced lights having a different range of wavelengths; coup

Assignees

Inventors

Classifications

  • in cladding · CPC title

  • Index · CPC title

  • G01N21/41Primary

    Refractivity; Phase-affecting properties, e.g. optical path length (G01N21/21 takes precedence) · CPC title

  • the waveguide coupled to a cavity resonator · CPC title

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What does patent US9581545B2 cover?
An optical sensing system may include a light separation element configured to separate an input light into a plurality of sliced lights and a first resonator configured to receive one sliced light of the plurality of sliced lights. An effective refractive index of the first resonator may be changeable in response to a change in a refractive index of a cladding of the first resonator, a second …
Who is the assignee on this patent?
Agency Science Tech & Res
What technology area does this patent fall under?
Primary CPC classification G01N21/41. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Feb 28 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).