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Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones

A small-volume highly-sensitive photoacoustic spectroscopy (PAS) methane detection system based on differential silicon cantilever optical microphones (SCOMs) is proposed and experimentally demonstrated. The system contains a compact non-resonant photoacoustic cell with a small volume of 1.2 mL and...

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Autores principales: Fu, Lujun, Lu, Ping, Sima, Chaotan, Zhao, Jinbiao, Pan, Yufeng, Li, Tailin, Zhang, Xiaohang, Liu, Deming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9441265/
https://www.ncbi.nlm.nih.gov/pubmed/36068799
http://dx.doi.org/10.1016/j.pacs.2022.100382
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author Fu, Lujun
Lu, Ping
Sima, Chaotan
Zhao, Jinbiao
Pan, Yufeng
Li, Tailin
Zhang, Xiaohang
Liu, Deming
author_facet Fu, Lujun
Lu, Ping
Sima, Chaotan
Zhao, Jinbiao
Pan, Yufeng
Li, Tailin
Zhang, Xiaohang
Liu, Deming
author_sort Fu, Lujun
collection PubMed
description A small-volume highly-sensitive photoacoustic spectroscopy (PAS) methane detection system based on differential silicon cantilever optical microphones (SCOMs) is proposed and experimentally demonstrated. The system contains a compact non-resonant photoacoustic cell with a small volume of 1.2 mL and symmetrically-located dual SCOMs, as well as a distributed feedback laser at 1650.96 nm. The two identical SCOMs utilize the Fabry-Perot interferometric fiber-optic structure, with the differential Q-point demodulation algorithm to suppress the external vibration noise. Experimental results show that the SCOM has a high displacement sensitivity about 7.1 µm/Pa at 150 Hz and within 2.5 dB fluctuation between 5 Hz and 250 Hz. In the PAS gas sensing experiment, the normalized noise equivalent absorption coefficient of the PAS system is estimated to be 1.2 × 10(−9) cm(−1)·W·Hz(−1/2) and the minimum detection limit for methane is about 111.2 ppb with 1 s integration time. External disturbance is also applied to the dual SCOM system and results show excellent stability and noise resistance. The proposed PAS system exhibits superiorities of low gas consumption, high sensitivity and immunity to vibration and electromagnetic interference, which has an enormous potential in medicine, industry and environment.
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spelling pubmed-94412652022-09-05 Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones Fu, Lujun Lu, Ping Sima, Chaotan Zhao, Jinbiao Pan, Yufeng Li, Tailin Zhang, Xiaohang Liu, Deming Photoacoustics Special Section: Special issue on "Photoacoustic spectroscopy for gas sensing: from theoretical modeling to applications" A small-volume highly-sensitive photoacoustic spectroscopy (PAS) methane detection system based on differential silicon cantilever optical microphones (SCOMs) is proposed and experimentally demonstrated. The system contains a compact non-resonant photoacoustic cell with a small volume of 1.2 mL and symmetrically-located dual SCOMs, as well as a distributed feedback laser at 1650.96 nm. The two identical SCOMs utilize the Fabry-Perot interferometric fiber-optic structure, with the differential Q-point demodulation algorithm to suppress the external vibration noise. Experimental results show that the SCOM has a high displacement sensitivity about 7.1 µm/Pa at 150 Hz and within 2.5 dB fluctuation between 5 Hz and 250 Hz. In the PAS gas sensing experiment, the normalized noise equivalent absorption coefficient of the PAS system is estimated to be 1.2 × 10(−9) cm(−1)·W·Hz(−1/2) and the minimum detection limit for methane is about 111.2 ppb with 1 s integration time. External disturbance is also applied to the dual SCOM system and results show excellent stability and noise resistance. The proposed PAS system exhibits superiorities of low gas consumption, high sensitivity and immunity to vibration and electromagnetic interference, which has an enormous potential in medicine, industry and environment. Elsevier 2022-06-30 /pmc/articles/PMC9441265/ /pubmed/36068799 http://dx.doi.org/10.1016/j.pacs.2022.100382 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Special Section: Special issue on "Photoacoustic spectroscopy for gas sensing: from theoretical modeling to applications"
Fu, Lujun
Lu, Ping
Sima, Chaotan
Zhao, Jinbiao
Pan, Yufeng
Li, Tailin
Zhang, Xiaohang
Liu, Deming
Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
title Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
title_full Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
title_fullStr Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
title_full_unstemmed Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
title_short Small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
title_sort small-volume highly-sensitive all-optical gas sensor using non-resonant photoacoustic spectroscopy with dual silicon cantilever optical microphones
topic Special Section: Special issue on "Photoacoustic spectroscopy for gas sensing: from theoretical modeling to applications"
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9441265/
https://www.ncbi.nlm.nih.gov/pubmed/36068799
http://dx.doi.org/10.1016/j.pacs.2022.100382
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