IP Library Granted Patent US 10,466,102
Granted Patent B2
US 10,466,102 · App. 16/028,473 · Granted Nov 5, 2019

Spectroscopy system with laser and pulsed output beam

Inventor: Mohammed N. Islam (Ann Arbor, MI)
Assignee: Omni Medsci, Inc.
G01J3/108G01B9/02091G01J3/0218G01J3/0245G01J3/42G02B6/29349G02F1/365H01S3/06754H01S3/094007H01S3/302H01S5/0064H01S5/0085H01S5/0092H01S5/1092H01S5/146H01S5/4012G01J2003/102G01J2003/423G02F2001/3528G02F2202/32H01S3/06725H01S3/094069H01S3/094076H01S3/1024H01S2301/085
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Quick Facts
Patent No.
US 10,466,102
App. No.
16/028,473
Granted
Nov 5, 2019
Kind
B2
Abstract

A spectroscopy system includes a light source having an input light source, including semiconductor diodes generating an input beam with a wavelength shorter than 2.5 microns. Cladding-pumped fiber amplifiers receive the input beam and form an amplified optical beam having a spectral width. A nonlinear element broadens the spectral width of the amplified optical beam to 100 nm or more through a nonlinear effect forming an output beam that is pulsed. A filter is coupled to at least one of a lens and a mirror that receives the output beam and delivers the filtered output beam to a sample. A detection system includes detectors configured to receive the output beam reflected or transmitted from the sample. The detection system is configured to use a lock-in technique with the pulsed output beam and the spectroscopy system is adapted to detect chemicals in the sample.

Claims (41)

1. A spectroscopy system, comprising:

a light source comprising:

an input light source, including one or more semiconductor diodes, configured to generate an input beam that comprises a wavelength shorter than 2.5 microns;

one or more optical amplifiers configured to receive at least a portion of the input beam and to form an amplified optical beam having a spectral width, wherein at least a portion of the one or more optical amplifiers comprises a cladding-pumped fiber amplifier; and

a nonlinear element configured to receive at least a portion of the amplified optical beam and to broaden the spectral width of the received amplified optical beam to 100 nm or more through a nonlinear effect forming an output beam, wherein the output beam is pulsed;

a filter coupled to at least one of a lens and a mirror configured to receive at least a portion of the output beam, and to deliver at least a portion of the received output beam to a sample; and

a detection system comprising one or more detectors configured to receive at least a part of the output beam reflected or transmitted from the sample, wherein the detection system is configured to use a lock-in technique with the pulsed output beam; and

wherein the spectroscopy system is adapted to perform non-contact detection of chemical species within the sample.

2. The spectroscopy system of claim 1 , wherein the detection system is configured to use a phase lock technique with the pulsed output beam.

3. The spectroscopy system of claim 1 , wherein the detection system is configured to use a box-car averager.

4. The spectroscopy system of claim 1 , wherein the spectroscopy system comprises a reference path for calibrating the spectroscopy system.

5. The spectroscopy system of claim 1 , wherein the sample comprises amino acids, benzene rings, oxygen-hydrogen bonds, carbon-oxygen bonds, nitrogen-oxygen bonds, carbon-hydrogen bonds, or nitrogen-hydrogen bonds.

6. The spectroscopy system of claim 1 , wherein the detection system comprises a Fourier Transform Infrared (FTIR) spectroscopy system.

7. A spectroscopy system, comprising:

a light source comprising:

an input light source, including one or more semiconductor diodes, configured to generate an input beam that comprises a wavelength shorter than 2.5 microns;

one or more optical amplifiers configured to receive at least a portion of the input beam and form an amplified optical beam having a spectral width; and

a nonlinear element configured to receive at least a portion of the amplified optical beam and to broaden the spectral width of the received amplified optical beam to 100 nm or more through a nonlinear effect forming an output beam, wherein the output beam is pulsed;

at least one of a lens and a mirror configured to receive at least a portion of the output beam, and to deliver at least a portion of the received output beam to a sample; and

a detection system comprising one or more detectors configured to receive at least a part of the output beam reflected or transmitted from the sample, wherein the detection system is configured to use a lock-in technique with the pulsed output beam; and

wherein the spectroscopy system is adapted to perform spectral fingerprinting to measure a chemical composition of the sample.

8. The spectroscopy system of claim 7 , wherein the detection system is configured to use a phase lock technique with the pulsed output beam.

9. The spectroscopy system of claim 7 , wherein the detection system comprises a Fourier Transform Infrared (FTIR) spectroscopy system.

10. The spectroscopy system of claim 7 , wherein the spectroscopy system comprises a filter coupled to the at least one of a lens and a mirror.

11. The spectroscopy system of claim 7 , wherein the spectroscopy system comprises a reference path for calibrating the spectroscopy system.

12. The spectroscopy system of claim 7 , wherein the sample comprises oxygen-hydrogen, carbon-oxygen, nitrogen-oxygen, carbon-hydrogen, or nitrogen-hydrogen bonds.

13. The spectroscopy system of claim 7 , wherein the sample comprises amino acids or benzene rings.

14. The spectroscopy system of claim 7 , wherein at least a portion of the one or more optical amplifiers comprises a cladding-pumped fiber amplifier.

15. A spectroscopy system, comprising:

a light source comprising:

an input light source, including one or more semiconductor diodes, configured to generate an input beam that comprises a wavelength shorter than 2.5 microns;

one or more optical amplifiers configured to receive at least a portion of the input beam and form an amplified optical beam having a spectral width, wherein at least a portion of the one or more optical amplifiers comprises a cladding-pumped fiber amplifier; and

a nonlinear element configured to receive at least a portion of the amplified optical beam and to broaden the spectral width of the received amplified optical beam to 100 nm or more through a nonlinear effect forming an output beam, wherein the output beam is pulsed;

at least one of a lens and a mirror configured to receive at least a portion of the output beam, and to deliver at least a portion of the received output beam to a sample; and

a detection system comprising one or more detectors configured to receive at least a part of the output beam reflected or transmitted from the sample, wherein the detection system is configured to use a box-car averager with the pulsed output beam; and

wherein the spectroscopy system is adapted to measure a chemical composition of the sample.

16. The spectroscopy system of claim 15 , wherein the spectroscopy system comprises a filter coupled to the at least one of a lens and a mirror.

17. The spectroscopy system of claim 16 , wherein the spectroscopy system comprises a reference path for calibrating the spectroscopy system.

18. The spectroscopy system of claim 17 , wherein the detection system comprises a Fourier Transform Infrared (FTIR) spectroscopy system.

19. The spectroscopy system of claim 18 , wherein the spectroscopy system is adapted to perform spectral fingerprinting for non-contact detection of chemical species within the sample.

20. The spectroscopy system of claim 19 , wherein the sample comprises oxygen-hydrogen bonds, carbon-oxygen bonds, nitrogen-oxygen bonds, carbon-hydrogen bonds, nitrogen-hydrogen bonds, amino acids or benzene rings.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 28, 2023
From: OMNI MEDSCI, INC.
To: OMNI CONTINUUM, LLC
Reel/Frame 063126/0512 →
Continuity (12)
Continuation 15662527 · Jul 28, 2017
Continuation 15248230 · Aug 26, 2016
Continuation 14861755 · Sep 22, 2015
Continuation 14715960 · May 19, 2015
Continuation 14186171 · Feb 21, 2014
Continuation 14071983 · Nov 5, 2013
Continuation 13750556 · Jan 25, 2013
Continuation 13241900 · Sep 23, 2011
Continuation 12366323 · Feb 5, 2009
Continuation 11599950 · Nov 15, 2006
Provisional Application 60738389 · Nov 18, 2005
Related Publication 20190056266A1 · Feb 21, 2019