IP Library Patent Application 15019942
Patent Application
App. No. 15/019,942

MICRO-RESONATOR AND FIBER TAPER SENSOR SYSTEM

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Quick Facts
Patent No.
US None
App. No.
15/019,942
Abstract

A micro-resonator and fiber taper based sensing system, which uses mode splitting or frequency shift methods and polarization measurements for particle sensing.

Claims (63)

1 . A sensing apparatus comprising:

a processor and a memory having data representative of plurality of polarizability values for a plurality of common air pollutants and said memory having a selection algorithm;

a laser;

a based whispering gallery mode micro-resonator;

a coupling medium configured to transition the tunable laser in and out resonance modes;

a photodetector configured to detect a laser signal output at an output port of the coupling waveguide and said photodetector having a detector output signal representative of the detected laser signal output; and

said processor configured to process the selection algorithm to analyze a transmission spectra of the detector output signal, thereby deriving a detected polarizability value and selecting a matching polarizability value from the plurality of polarizability values.

2 . The sensing apparatus as recited in claim 1 , comprising:

a polarization controller configured to receive a laser emission from the laser and output

a polarized laser signal to the coupled waveguide.

3 . A sensing apparatus comprising:

a micro-laser, a whispering gallery mode micro-resonator and a coupling medium configured to transition the tunable laser in and out resonance modes, embedded in a gas permeable encapsulation material; and

a photodetector configured to detect a laser signal output at an output port of the coupling medium and said photodetector configured to detect one or more of a resonance shift in a transmission spectrum and change in the mode pattern and said photo detector configured to output a signal indicative of the presence of a gas if one or more of a resonance shift in a transmission spectrum and change in the mode pattern is detected.

4 . The sensing apparatus as recited in claim 3 , comprising:

a polarization controller configured to receive a laser emission from the laser and output

a polarized laser signal to the coupled waveguide.

5 . A sensing apparatus comprising:

a processor and a memory having data representative of plurality of speckle pattern changes for a plurality of common external perturbations and said memory having a selection algorithm;

a whispering gallery mode micro-resonator;

a coupled tapered waveguide connected to a multimode fiber;

a photodetector configured to detect an output signal at an output port of the coupled tapered waveguide and said photodetector configured to detect a speckle pattern; and

said processor configured to process the selection algorithm to analyze a transmission spectra of the detector output signal, thereby deriving a detected speckle patter change and selecting a matching speckle patter change from the plurality of speckle pattern changes.

6 . The sensing apparatus as recited in claim 5 , comprising:

a laser; and

a polarization controller configured to receive a laser emission from the tunable laser and output a polarized laser signal to the coupled waveguide.

7 . A sensing apparatus comprising:

a processor and a memory having data representative of plurality of speckle pattern changes for a plurality of common external perturbations and said memory having a selection algorithm:

a fiber;

a coupled tapered waveguide connected to a multimode fiber;

a photodetector configured to detect an output signal at an output port of the coupled tapered waveguide and said photodetector configured to detect a speckle pattern; and

said processor configured to process the selection algorithm to analyze a transmission spectra of the detector output signal, thereby deriving a detected speckle patter change and selecting a matching speckle patter change from the plurality of speckle pattern changes.

8 . The sensing apparatus as recited in claim 7 , comprising:

a laser; and

a polarization controller configured to receive a laser emission from the tunable laser and output a polarized laser signal to the coupled waveguide.

9 . A sensing apparatus comprising:

an ultra-narrow linewidth micro-laser;

a whispering gallery mode micro-resonator;

a coupled tapered waveguide configured to transition the ultra-narrow linewidth micro-laser laser in and out resonance modes;

said whispering gallery mode micro-resonator having a functionalize surface selected from one or more of an antibody bound on the surface and a chemical bound on the surface, where one or more of said antibody is configured to bind with an antigen and said chemical configured to bind with a molecule; and

a photodetector configured to detect an output signal at an output port of the coupled waveguide and said photodetector configured to detect a frequency shift indicative of change in refractive index due to the functionalized surface.

10 . The sensing apparatus as recited in claim 9 , comprising:

an ultra-narrow linewidth micro-laser; and

a polarization controller configured to receive a laser emission from the ultra-narrow linewidth laser and output a polarized laser signal to the coupled waveguide.

11 . A sensing apparatus comprising:

an ultra-narrow linewidth micro-laser;

a whispering gallery mode micro-resonator;

a coupled tapered waveguide configured to transition the ultra-narrow linewidth micro-laser laser in and out resonance modes;

said whispering gallery mode micro-resonator having a functionalize surface of a chemical bound on the surface, where the chemical configured to be responsive to the presence of a specific gas; and

a photodetector configured to detect an output signal at an output port of the coupled waveguide and said photodetector configured to detect a frequency shift indicative of change in refractive index due to the functionalized surface.

12 . The sensing apparatus as recited in claim 11 , comprising:

an ultra-narrow linewidth micro-laser; and

a polarization controller configured to receive a laser emission from the ultra-narrow linewidth laser and output a polarized laser signal to the coupled waveguide.

13 . The sensing apparatus as recited in claim 12 , where the functionalized surface is selected from one or more of a chemical sensitive to a variation in temperature, humidity, or pressure.

14 . The sensing apparatus as recited in claim 13 , where the coupled tapered waveguide surface is functionalized with a waveguide chemical configured for one or more of binding to a molecule, sensing variation in temperature, sensing a variation in humidity and sensing a variation in pressure.

15 . The sensing apparatus as recited in claim 14 , comprising:

a dopant applied to the surface of a micro-resonator thereby configured to enable lasing in multiple colors.

16 . A wave sensing apparatus comprising:

an ultra-narrow linewidth micro-laser;

a whispering gallery mode micro-resonator;

a coupled tapered waveguide configured to transition the ultra-narrow linewidth micro-laser laser in and out resonance modes;

said whispering gallery mode micro-resonator having a functionalize surface of a specific material doped on the surface, where the specific material is configured to be responsive to the presence of a specific wave type; and

a photodetector configured to detect an output signal at an output port of the coupled waveguide and said photodetector configured to detect a frequency shift indicative of change in refractive index due to the functionalized surface.

17 . The wave sensing apparatus as recited in claim 16 , where the specific wave type is one or more of a magnetic wave, IR, UV and an acoustic wave.

Assignments (1)
CONFIRMATORY LICENSE Recorded Jan 4, 2017
From: WASHINGTON UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 041245/0880 →