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Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste

In this study, a high-performance H(2)S sensor that operates at RT was successfully fabricated using biodegradable electroactive polymer-polyurethane-urea (PUU) and PUU-activated-carbon (AC) composites as sensitive material. The PUU was synthesized through the copolymerization of biodegradable polyc...

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Autores principales: Bibi, Aamna, Santiago, Karen S., Yeh, Jui-Ming, Chen, Hsui-Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920131/
https://www.ncbi.nlm.nih.gov/pubmed/36771986
http://dx.doi.org/10.3390/polym15030685
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author Bibi, Aamna
Santiago, Karen S.
Yeh, Jui-Ming
Chen, Hsui-Hui
author_facet Bibi, Aamna
Santiago, Karen S.
Yeh, Jui-Ming
Chen, Hsui-Hui
author_sort Bibi, Aamna
collection PubMed
description In this study, a high-performance H(2)S sensor that operates at RT was successfully fabricated using biodegradable electroactive polymer-polyurethane-urea (PUU) and PUU-activated-carbon (AC) composites as sensitive material. The PUU was synthesized through the copolymerization of biodegradable polycaprolactone diol and an electroactive amine-capped aniline trimer. AC, with a large surface area of 1620 m(2)/g and a pore diameter of 2 nm, was derived from coconut-shell waste. The composites, labeled PUU-AC1 and PUU-AC3, were prepared using a physical mixing method. The H(2)S-gas-sensing performance of PUU-AC0, PUU-AC1, and PUU-AC3 was evaluated. It was found that the PUU sensor demonstrated good H(2)S-sensing performance, with a sensitivity of 0.1269 ppm(−1) H(2)S. The H(2)S-gas-sensing results indicated that the PUU-AC composites showed a higher response, compared with PUU-AC0. The enhanced H(2)S-response of the PUU-AC composites was speculated to be due to the high surface-area and abounding reaction-sites, which accelerated gas diffusion and adsorption and electron transfer. When detecting trace levels of H(2)S gas at 20 ppm, the sensitivity of the sensors based on PUU-AC1 and PUU-AC3 increased significantly. An observed 1.66 and 2.42 times’ enhancement, respectively, in the sensors’ sensitivity was evident, compared with PUU-AC0 alone. Moreover, the as-prepared sensors exhibited significantly high selectivity toward H(2)S, with minimal to almost negligible responses toward other gases, such as SO(2), NO(2), NH(3), CO, and CO(2).
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spelling pubmed-99201312023-02-12 Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste Bibi, Aamna Santiago, Karen S. Yeh, Jui-Ming Chen, Hsui-Hui Polymers (Basel) Article In this study, a high-performance H(2)S sensor that operates at RT was successfully fabricated using biodegradable electroactive polymer-polyurethane-urea (PUU) and PUU-activated-carbon (AC) composites as sensitive material. The PUU was synthesized through the copolymerization of biodegradable polycaprolactone diol and an electroactive amine-capped aniline trimer. AC, with a large surface area of 1620 m(2)/g and a pore diameter of 2 nm, was derived from coconut-shell waste. The composites, labeled PUU-AC1 and PUU-AC3, were prepared using a physical mixing method. The H(2)S-gas-sensing performance of PUU-AC0, PUU-AC1, and PUU-AC3 was evaluated. It was found that the PUU sensor demonstrated good H(2)S-sensing performance, with a sensitivity of 0.1269 ppm(−1) H(2)S. The H(2)S-gas-sensing results indicated that the PUU-AC composites showed a higher response, compared with PUU-AC0. The enhanced H(2)S-response of the PUU-AC composites was speculated to be due to the high surface-area and abounding reaction-sites, which accelerated gas diffusion and adsorption and electron transfer. When detecting trace levels of H(2)S gas at 20 ppm, the sensitivity of the sensors based on PUU-AC1 and PUU-AC3 increased significantly. An observed 1.66 and 2.42 times’ enhancement, respectively, in the sensors’ sensitivity was evident, compared with PUU-AC0 alone. Moreover, the as-prepared sensors exhibited significantly high selectivity toward H(2)S, with minimal to almost negligible responses toward other gases, such as SO(2), NO(2), NH(3), CO, and CO(2). MDPI 2023-01-29 /pmc/articles/PMC9920131/ /pubmed/36771986 http://dx.doi.org/10.3390/polym15030685 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bibi, Aamna
Santiago, Karen S.
Yeh, Jui-Ming
Chen, Hsui-Hui
Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste
title Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste
title_full Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste
title_fullStr Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste
title_full_unstemmed Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste
title_short Valorization of Agricultural Waste as a Chemiresistor H(2)S-Gas Sensor: A Composite of Biodegradable-Electroactive Polyurethane-Urea and Activated-Carbon Composite Derived from Coconut-Shell Waste
title_sort valorization of agricultural waste as a chemiresistor h(2)s-gas sensor: a composite of biodegradable-electroactive polyurethane-urea and activated-carbon composite derived from coconut-shell waste
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920131/
https://www.ncbi.nlm.nih.gov/pubmed/36771986
http://dx.doi.org/10.3390/polym15030685
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