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Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane

In this paper, we propose and experimentally demonstrate an ultra-sensitive all-optical PAS gas sensor, incorporating with a near-infrared (NIR) diode laser, fiber-optic microphones (FOMs) and a double channel differential T-type photoacoustic cell. The FOM is realized by Fabry-Perot interferometry...

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Detalles Bibliográficos
Autores principales: Xiao, Hanping, Zhao, Jinbiao, Sima, Chaotan, Lu, Ping, Long, Yanhong, Ai, Yan, Zhang, Wanjin, Pan, Yufeng, Zhang, Jiangshan, Liu, Deming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9035707/
https://www.ncbi.nlm.nih.gov/pubmed/35479193
http://dx.doi.org/10.1016/j.pacs.2022.100353
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author Xiao, Hanping
Zhao, Jinbiao
Sima, Chaotan
Lu, Ping
Long, Yanhong
Ai, Yan
Zhang, Wanjin
Pan, Yufeng
Zhang, Jiangshan
Liu, Deming
author_facet Xiao, Hanping
Zhao, Jinbiao
Sima, Chaotan
Lu, Ping
Long, Yanhong
Ai, Yan
Zhang, Wanjin
Pan, Yufeng
Zhang, Jiangshan
Liu, Deming
author_sort Xiao, Hanping
collection PubMed
description In this paper, we propose and experimentally demonstrate an ultra-sensitive all-optical PAS gas sensor, incorporating with a near-infrared (NIR) diode laser, fiber-optic microphones (FOMs) and a double channel differential T-type photoacoustic cell. The FOM is realized by Fabry-Perot interferometry and novel gold-chromium (Au-Cr) composite nanomembranes. To meet the demand of high sensitivity and flat frequency response for the FOMs, the Au-Cr composite diaphragm is deliberately designed and fabricated by E-beam evaporation deposition with 330 nm in thickness and 6.35 mm in radius. Experimental results show that the FOM has a sensitivity of about 30 V/Pa and a flat frequency response from 300 to 900 Hz with fluctuation below 1 dB. Moreover, a double channel differential T-type photoacoustic cell is designed and employed in the all-optical PAS gas sensor, with the first-order resonant frequency of 610 Hz. The all-optical gas sensor is established and verified for CH(4) detection and the normalized noise equivalent absorption (NNEA) is 4.42 × 10(−10) W∙cm(−1)∙Hz(−1/2). The minimum detection limit (MDL) of 36.45 ppb is achieved with a 1 s integration time. The MDL could be further enhanced to 4.87 ppb with an integration time of 81 s, allowing ultra-sensitive trace gas detection.
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spelling pubmed-90357072022-04-26 Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane Xiao, Hanping Zhao, Jinbiao Sima, Chaotan Lu, Ping Long, Yanhong Ai, Yan Zhang, Wanjin Pan, Yufeng Zhang, Jiangshan Liu, Deming Photoacoustics Research Article In this paper, we propose and experimentally demonstrate an ultra-sensitive all-optical PAS gas sensor, incorporating with a near-infrared (NIR) diode laser, fiber-optic microphones (FOMs) and a double channel differential T-type photoacoustic cell. The FOM is realized by Fabry-Perot interferometry and novel gold-chromium (Au-Cr) composite nanomembranes. To meet the demand of high sensitivity and flat frequency response for the FOMs, the Au-Cr composite diaphragm is deliberately designed and fabricated by E-beam evaporation deposition with 330 nm in thickness and 6.35 mm in radius. Experimental results show that the FOM has a sensitivity of about 30 V/Pa and a flat frequency response from 300 to 900 Hz with fluctuation below 1 dB. Moreover, a double channel differential T-type photoacoustic cell is designed and employed in the all-optical PAS gas sensor, with the first-order resonant frequency of 610 Hz. The all-optical gas sensor is established and verified for CH(4) detection and the normalized noise equivalent absorption (NNEA) is 4.42 × 10(−10) W∙cm(−1)∙Hz(−1/2). The minimum detection limit (MDL) of 36.45 ppb is achieved with a 1 s integration time. The MDL could be further enhanced to 4.87 ppb with an integration time of 81 s, allowing ultra-sensitive trace gas detection. Elsevier 2022-04-12 /pmc/articles/PMC9035707/ /pubmed/35479193 http://dx.doi.org/10.1016/j.pacs.2022.100353 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 Research Article
Xiao, Hanping
Zhao, Jinbiao
Sima, Chaotan
Lu, Ping
Long, Yanhong
Ai, Yan
Zhang, Wanjin
Pan, Yufeng
Zhang, Jiangshan
Liu, Deming
Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
title Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
title_full Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
title_fullStr Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
title_full_unstemmed Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
title_short Ultra-sensitive ppb-level methane detection based on NIR all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
title_sort ultra-sensitive ppb-level methane detection based on nir all-optical photoacoustic spectroscopy by using differential fiber-optic microphones with gold-chromium composite nanomembrane
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9035707/
https://www.ncbi.nlm.nih.gov/pubmed/35479193
http://dx.doi.org/10.1016/j.pacs.2022.100353
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