IP Library Granted Patent US 11,619,583
Granted Patent B2
US 11,619,583 · App. 17/407,246 · Granted Apr 4, 2023

Highly stable semiconductor lasers and sensors for III-V and silicon photonic integrated circuits

Inventors: Jerry R. Meyer (Catonsville, MD); Igor Vurgaftman (Severna Park, MD); Chadwick Lawrence Canedy (Washington, DC); William W. Bewley (Falls Church, VA); Chul Soo Kim (Springfield, VA); Charles D. Merritt (Fairfax, VA); Michael V. Warren (Arlington, VA); R. Joseph Weiblen (Washington, DC); Mijin Kim (Springfield, VA)
Assignee: The Government of the United States of America, as represented by the Secretary of the Navy
G01N21/59G01J3/1895G01J3/2803G01N21/255G01N21/27G02B6/102H01S5/0215H01S5/0262H01S5/0287H01S5/0421H01S5/101H01S5/125H01S5/2063H01S5/2206H01S5/3402H01S5/343G01N2201/0612H01S5/062H01S5/0612
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Quick Facts
Patent No.
US 11,619,583
App. No.
17/407,246
Granted
Apr 4, 2023
Kind
B2
Abstract

Building blocks are provided for on-chip chemical sensors and other highly-compact photonic integrated circuits combining interband or quantum cascade lasers and detectors with passive waveguides and other components integrated on a III-V or silicon. A MWIR or LWIR laser source is evanescently coupled into a passive extended or resonant-cavity waveguide that provides evanescent coupling to a sample gas (or liquid) for spectroscopic chemical sensing. In the case of an ICL, the uppermost layer of this passive waveguide has a relatively high index of refraction that enables it to form the core of the waveguide, while the ambient air, consisting of the sample gas, functions as the top cladding layer. A fraction of the propagating light beam is absorbed by the sample gas if it contains a chemical species having a fingerprint absorption feature within the spectral linewidth of the laser emission.

Claims (6)

1. A multi-spectral detector, comprising:

a plurality of resonant-cavity infrared detectors (RCIDs) aligned in a series along a single passive waveguide,

wherein each of the RCIDs is bounded by two distributed Bragg reflector (DBR) mirrors having a predetermined grating pitch formed by gratings etched into the passive waveguide, wherein the grating pitch of the two DBR mirrors that bound each of the RCIDs in the series is the same but is different from a grating pitch of the DBR mirrors bounding any other RCID in the series, thereby causing each RCID to have a corresponding resonance wavelength that is different from a resonance wavelength of every other RCID in the series;

wherein each RCID in the series is configured to detect and measure a photocurrent resulting from light flowing in the RCID due to light propagating in the passive waveguide;

wherein the photocurrent is sensitive primarily to incoming light having a wavelength within one linewidth of the resonance wavelength of the RCID but is less sensitive to light having a wavelength not within one linewidth of the resonance wavelength of the RCID; and

wherein the photocurrent measured by the plurality of RCIDs provide information about at least one spectral characteristic of light input to the passive waveguide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2021
From: MEYER, JERRY R.; VURGAFTMAN, IGOR; CANEDY, CHAWICK LAWRENCE; BEWLEY, WILLIAM W.; KIM, CHUL SOO; MERRITT, CHARLES D.; KIM, MIJIN; WARREN, MICHAEL V.; WEIBLEN, R. JOSEPH
To: THE GOVERNMENT OF THE UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY OF THE NAVY
Reel/Frame 057237/0339 →
Continuity (3)
Division 16509613 · Jul 12, 2019
Provisional Application 62697419 · Jul 13, 2018
Related Publication 20210396668A1 · Dec 23, 2021