IP Library Granted Patent US 7,095,010
Granted Patent B2
US 7,095,010 · App. 10/729,242 · Granted Aug 22, 2006

Silicon on insulator resonator sensors and modulators and method of operating the same

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Quick Facts
Patent No.
US 7,095,010
App. No.
10/729,242
Granted
Aug 22, 2006
Kind
B2
Abstract

A microsensor for sensing a substance comprises a substrate, a source of light, an optical microresonator or semiconductor optical ring microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance, a waveguide coupling the source of light to the optical microresonator, and a detector coupled to the microresonator to measure the resonant frequency of the microresonator, the absorption loss of whispering gallery modes in the microresonator or the quality factor of the microresonator, which are sensitive to interaction of the substance with the optical microresonator. A polymer coating disposed on the microresonator is reactive with the substance. The microsensor may comprise a plurality of microresonators corresponding to a plurality of different resonant frequencies to generate an absorption spectrum of the substance.

Claims (72)

1. A microsensor for sensing a substance comprising:

a substrate;

a source of light;

an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance;

a waveguide coupling the source of light to the optical microresonator; and

a detector coupled to the microresonator to measure a performance parameter of the optical microresonator sensitive to interaction of the substance with the optical microresonator,

where the performance parameter is the absorption loss of whispering gallery modes in the microresonator.

2. A microsensor for sensing a substance comprising:

a substrate;

a source of light;

an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance;

a waveguide coupling the source of light to the optical microresonator; and

a detector coupled to the microresonator to measure a performance parameter of the optical microresonator sensitive to interaction of the substance with the optical microresonator,

where the waveguide comprises a CMOS fabricated waveguide and the detector is comprises a detector deposited onto the CMOS fabricated waveguide.

3. A microsensor for sensing a substance comprising:

a substrate;

a source of light;

an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance;

a waveguide coupling the source of light to the optical microresonator; and

a detector coupled to the microresonator to measure a performance parameter of the optical microresonator sensitive to interaction of the substance with the optical microresonator,

where the microresonator is characterized by an optical absorption loss determined by direct optical excitation of the substance when in contact with the microresonator.

4. The microsensor of claim 3 further comprising a plurality of microresonators corresponding to a plurality of different resonant frequencies to generate an absorption spectrum of the substance.

5. A microsensor for sensing a substance comprising:

a substrate;

a source of light;

an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance;

a waveguide coupling the source of light to the optical microresonator;

a detector coupled to the microresonator to measure a performance parameter of the optical microresonator sensitive to interaction of the substance with the optical microresonator; and

a plurality of microsensors organized in an addressable array on the substrate, ones of the plurality of microsensors being resonant at or tuned to different optical frequencies, absorption losses of the plurality of microsensors being measured as a result of optical coupling between an analyte and ones of the resonators as determined by the resonant frequency of the microresonator and the absorption peak of the analyte, whereby an absorption spectrum of direct spectroscopy of an analyte or absorption of antibody-linked fluorescent molecules used as markers are measured.

6. A microsensor for sensing a substance comprising:

a substrate;

a source of light;

an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance;

a waveguide coupling the source of light to the optical microresonator;

a detector coupled to the microresonator to measure a performance parameter of the optical microresonator sensitive to interaction of the substance with the optical microresonator;

a plurality of microresonators and a corresponding plurality of detectors formed into an array coupled by the waveguide to the light source in which the plurality of microresonators are exposed to a plurality of substances;

an addressing circuit for reading the array; and

a CMOS integrated read-out circuitry fabricated in the substrate coupled to the addressing circuit,

where the CMOS integrated read-out circuitry provides diagnostic information on the condition of sensor performance and electronic intelligence in a read-out process.

7. The microsensor of claim 6 further comprising a wireless interface fabricated on the substrate and communicated to the read-out circuitry.

8. A method for sensing a substance comprising:

providing a substrate;

providing a source of light;

communicating the light through a waveguide coupled to the source of light to an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance; and

detecting the interaction between the microresonator and substance by measurement of a performance parameter of the optical microresonator,

where detecting the interaction between the microresonator and substance comprising detecting, the optical performance of a semiconductor optical ring microresonator;

where detecting the optical performance of a semiconductor optical ring microresonator comprises measuring the optical performance of a microresonator with an initial Q of 10,000 or greater,

where measuring the optical performance of a microresonator comprises measuring the absorption loss of whispering gallery modes in the microresonator.

9. A method for sensing a substance comprising:

providing a substrate;

providing a source of light;

communicating the light through a waveguide coupled to the source of light to an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance;

detecting the interaction between the microresonator and substance by measurement of a performance parameter of the optical microresonator; and

providing a plurality of microsensors organized in an addressable array on the substrate, ones of the plurality of microsensors being resonant at or tuned to different optical frequencies, measuring the absorption losses of the plurality of microsensors as a result of optical coupling between an analyte and ones of the resonators as determined by the resonant frequency of the microresonator and the absorption peak of the analyte, and generating an absorption spectrum of direct spectroscopy of an analyte or absorption of antibody-linked fluorescent molecules used as markers are measured.

10. A method for sensing a substance comprising:

providing a substrate;

providing a source of light;

communicating the light through a waveguide coupled to the source of light to an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance; and

detecting the interaction between the microresonator and substance by measurement of a performance parameter of the optical microresonator;

providing a plurality of microresonators and a corresponding plurality of detectors configured into an array coupled by the waveguide to the light source and exposing the plurality of microresonators to the substance or plurality of substances;

fabricating an addressing circuit on the substrate for reading the array;

fabricating CMOS integrated read-out circuitry in the substrate coupled to the addressing circuit; and

generating diagnostic information on the condition of sensor performance and electronic intelligence by means of the integrated read-out circuitry.

11. A method for sensing a substance comprising:

providing a substrate;

providing a source of light;

communicating the light through a waveguide coupled to the source of light to an optical microresonator fabricated in the substrate exposed to the substance to allow an interaction between the microresonator and substance; and

detecting the interaction between the microresonator and substance by measurement of a performance parameter of the optical microresonator;

providing a plurality of microresonators and a corresponding plurality of detectors configured into an array coupled by the waveguide to the light source and exposing the plurality of microresonators to the substance or plurality of substances;

fabricating an addressing circuit on the substrate for reading the array;

fabricating CMOS integrated read-out circuitry in the substrate coupled to the addressing circuit; and

fabricating a wireless interface on the substrate communicated to the read-out circuitry.

Assignments (8)
CORRECTIVE ASSIGNMENT TO CORRECT THE THE ASSIGNOR'S NAME PREVIOUSLY RECORDED AT REEL: 058979 FRAME: 0027. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 24, 2022
From: LUXTERA LLC
To: CISCO TECHNOLOGY, INC.
Reel/Frame 059496/0803 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2022
From: CISCO SYSTEMS, INC.
To: CISCO TECHNOLOGY, INC.
Reel/Frame 058979/0027 →
RELEASE OF SECURITY INTEREST Recorded Dec 24, 2020
From: SILICON VALLEY BANK
To: LUXTERA, LLC
Reel/Frame 054855/0838 →
CHANGE OF NAME Recorded Feb 6, 2020
From: LUXTERA, INC.
To: LUXTERA LLC
Reel/Frame 052019/0811 →
SECURITY INTEREST Recorded Mar 29, 2017
From: LUXTERA, INC.
To: SILICON VALLEY BANK
Reel/Frame 042109/0140 →
SECURITY AGREEMENT Recorded Jun 17, 2009
From: LUXTERA, INC.
To: SILICON VALLEY BANK
Reel/Frame 022835/0340 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2004
From: DICKINSON, ALEX
To: LUXTERA, INC.
Reel/Frame 015153/0474 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2004
From: SCHERER, AXEL
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 015110/0603 →