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US20070229834A1 - System and method for high sensitivity optical detection of gases - Google Patents

System and method for high sensitivity optical detection of gases
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Publication number
US20070229834A1
US20070229834A1US11/256,377US25637705AUS2007229834A1US 20070229834 A1US20070229834 A1US 20070229834A1US 25637705 AUS25637705 AUS 25637705AUS 2007229834 A1US2007229834 A1US 2007229834A1
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tunable
gases
signal
set forth
detection
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Abandoned
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US11/256,377
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C. Kumar Patel
Michael Pushkarsky
Michael Webber
Tyson MacDonald
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Pranalytica Inc
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Assigned to DARPAreassignmentDARPACONFIRMATORY LICENSE (SEE DOCUMENT FOR DETAILS).Assignors: PRANALYTICA, INC.
Publication of US20070229834A1publicationCriticalpatent/US20070229834A1/en
Assigned to PRANALYTICA, INC.reassignmentPRANALYTICA, INC.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: MACDONALD, TYSON, PATEL, C. KUMAR N., PUSHKARSKY, MICHAEL B., WEBBER, MICHAEL E.
Priority to US11/986,632prioritypatent/US7502115B2/en
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Abstract

A method and apparatus architecture for detecting gases, particularly hazardous gases which should be detected in miniscule amounts. High sensitivity detection of chemical warfare agents (CWAs) is set forth with very low probability of false positives (PFP) by the use of an innovative laser-photoacoustic spectrometer (L-PAS). Detection of diisopropyl methylphosphonate (DIMP), a decomposition product of Sarin and a relatively harmless surrogate for the nerve gases, is made in the presence of other gases that are expected to be interferences in an urban setting. Detection sensitivity for DIMP in the presence of these interferences of better than 0.45 ppb, which satisfies current homeland and military security requirements is shown as well as the first analysis of optical techniques for the detection of chemical warfare agents (CWAs) and toxic industrial chemicals (TICs) in real world conditions.

Description

Claims (35)

11. A gas detector, comprising:
an optical analyzer detecting in a sample of gas optical absorbance of said sample at a plurality of wavelengths, said optical analyzer transmitting an absorbency signal representative of optical absorbency for each respective one of said plurality of wavelengths, said optical analyzer selected from the group consisting of:
tunable laser systems;
laser photoacoustic systems including a L-PAS system using a CO2laser;
long path optical absorption measuring systems;
cavity ring-down spectroscopy systems;
FTIR systems;
a L-PAS using one or several tunable quantum cascade lasers;
a L-PAS using a tunable parametric oscillator;
a L-PAS using one or several direct bandgap recombination type semiconductor lasers;
a L-PAS using any combination of CO2lasers, quantum cascade lasers, parametric oscillators, and direct bandgap recombination type semiconductor lasers; and
any combinations thereof;
a spectral library of gas species absorbing one or more of said plurality of wavelengths including determined absorptions for expected gases and target gases, said spectral library derived from optical analysis of said expected gases and said target gases by said optical analyzer; said plurality of wavelengths of said optical analyzer being equal or greater in number than the number of absorbing gas species; and
a processor receiving said absorbency signals and applying a least squares fitting technique with said absorbency signals and said determined absorptions to provide mole fraction quantities for said expected gases and said target gases; whereby
said sample of gas may be analyzed for presence and quantity of said expected gases and said target gases.
12. A high sensitivity gas detector for detection of hazardous gases with reduced probability of false positive and false negative signals, comprising:
a light source transmitting modulated tunable radiation;
a photoacoustic test cell illuminated by said radiation, said photoacoustic test cell having a microphone system transmitting a photoacoustic signal;
a signal receiver receiving said microphone signal and transmitting a normalized signal; and
a signal processor receiving said normalized signal, analyzing said normalized signal in conjunction with at least one entry in a library for signal signatures for gases detectable by said radiation, said signal processor transmitting a resulting signal indicating a quantity of the hazardous gases in said test cell; whereby
detection of known hazardous gases can be made by illuminating sample air or other gas in said photoacoustic test cell.
28. A high sensitivity gas detector for detection of hazardous gases with reduced probability of false positive and false negative signals, comprising:
a light source transmitting modulated tunable radiation, said light source selected from the group consisting of:
a tunable CO2laser;
a tunable CO2laser tunable to wavelengths inclusively between 9.0 μm and 11.5 μm;
one or more tunable quantum cascade lasers;
a tunable quantum cascade laser tunable to wavelengths inclusively between 3.0 μm and 15 μm;
a tunable parametric oscillator;
a tunable parametric oscillator tunable to wavelengths inclusively between 2.0 μm and 15 μm;
one or more tunable direct bandgap recombination type semiconductor lasers;
a tunable direct bandgap recombination type semiconductor laser tunable between wavelengths inclusively between 1.0 μm and 15 μm;
any combination of CO2lasers, quantum cascade lasers, parametric oscillators, and direct bandgap recombination type semiconductor lasers;
any tunable combination of CO2lasers, quantum cascade lasers, parametric oscillators, and direct bandgap recombination type semiconductor lasers, such tunable combination tunable between wavelengths inclusively between 1.0 μm and 15 μm; and
any combinations thereof;
a photoacoustic test cell illuminated by said radiation, said photoacoustic test cell having a microphone system transmitting a photoacoustic signal;
a detector detecting said radiation and a characteristic thereof, said detector transmitting a reference signal;
a beam splitter splitting said radiation to illuminate both said test cell and said detector;
a signal receiver receiving said microphone signal and transmitting a normalized signal;
said signal receiver receiving said reference signal and said photoacoustic signal;
said signal receiver communicating bi-directionally with said light source;
a signal processor receiving said normalized signal, analyzing said normalized signal in conjunction with at least one entry in a library for signal signatures for gases detectable by said radiation, said signal processor transmitting a resulting signal indicating a quantity of the hazardous gases in said test cell
said library having entries for analysis with said normalized signal, said entries including signal signatures for chemical warfare agents (CWAs): Lewisite, Nitrogen Mustard (H—N3), Sulfur mustard (HD), 4-dithiane, diisopropyl methylphosphonate (DIMP), dimethyl methylphosphonate (DMMP), isoamyl alcohol, methylphosphonic difluoride (DIFLUOR), Cyclosarin (GF), Sarin (GB), Soman (GD), Tabun (GA), VX, triethyl phosphate, and 2-diisopropylaminoethanol (DIPAE);
said library having entries for analysis with said normalized signal, said entries including signal signatures for toxic industrial chemicals (TICs):ammonia, arsine, boron trichloride, ethylene oxide, nitric acid, borontrifluoride, carbon disulfide, diborane, formaldehyde, hydrogen cyamide, hydrogen sulfide, nitric acid, phosgene, sulfur dioxide, tungsten hexafluoride, HBr, HCl, and HF; and
said library having entries for analysis with said normalized signal, said entries including signal signatures for explosives: TNT and PETN; whereby
detection of known hazardous gases can be made by illuminating sample air or other gas in said photoacoustic test cell.
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