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A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax

Metal oxide gas sensors with porous structures are widely used in numerous applications ranging from health monitoring and medical detection to safety; in this study, we report a highly sensitive SnO(2) gas sensor with a multi-level tube/pore structure prepared via biomimetic technology using flax w...

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Detalles Bibliográficos
Autores principales: Jia, Xilin, Wang, Ning, Tian, Junlong, Zhang, Yong, Lu, Donglin, Tan, Junjiang, Qiao, Ruyi, Chen, Lulu, Zhang, Wang, Zhong, Jianxin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9065453/
https://www.ncbi.nlm.nih.gov/pubmed/35514699
http://dx.doi.org/10.1039/c9ra02064k
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author Jia, Xilin
Wang, Ning
Tian, Junlong
Zhang, Yong
Lu, Donglin
Tan, Junjiang
Qiao, Ruyi
Chen, Lulu
Zhang, Wang
Zhong, Jianxin
author_facet Jia, Xilin
Wang, Ning
Tian, Junlong
Zhang, Yong
Lu, Donglin
Tan, Junjiang
Qiao, Ruyi
Chen, Lulu
Zhang, Wang
Zhong, Jianxin
author_sort Jia, Xilin
collection PubMed
description Metal oxide gas sensors with porous structures are widely used in numerous applications ranging from health monitoring and medical detection to safety; in this study, we report a highly sensitive SnO(2) gas sensor with a multi-level tube/pore structure prepared via biomimetic technology using flax waste as a bio-template and a simple wet chemical process combined with subsequent annealing. Indeed, MLTPS not only maintained and improved the excellence of porous structure gas sensing materials with abundant active sites and large surface-to-volume ratios, but also overcame the deficiency of the lack of gas diffusion channels in porous gas sensing materials. Thus, this novel multi-level tube/pore SnO(2) gas sensor exhibited significantly enhanced sensing performance, e.g. an ultra-low response concentration (250 ppb), a high response (87.9), a fast response (9.2 s), a low operating temperature (130 °C) and good stability, for formaldehyde. On the basis of these results, via the reuse of agricultural waste, this study provides a new concept for the low-cost synthesis of environmentally friendly and effective multi-level tube/pore gas sensor materials.
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spelling pubmed-90654532022-05-04 A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax Jia, Xilin Wang, Ning Tian, Junlong Zhang, Yong Lu, Donglin Tan, Junjiang Qiao, Ruyi Chen, Lulu Zhang, Wang Zhong, Jianxin RSC Adv Chemistry Metal oxide gas sensors with porous structures are widely used in numerous applications ranging from health monitoring and medical detection to safety; in this study, we report a highly sensitive SnO(2) gas sensor with a multi-level tube/pore structure prepared via biomimetic technology using flax waste as a bio-template and a simple wet chemical process combined with subsequent annealing. Indeed, MLTPS not only maintained and improved the excellence of porous structure gas sensing materials with abundant active sites and large surface-to-volume ratios, but also overcame the deficiency of the lack of gas diffusion channels in porous gas sensing materials. Thus, this novel multi-level tube/pore SnO(2) gas sensor exhibited significantly enhanced sensing performance, e.g. an ultra-low response concentration (250 ppb), a high response (87.9), a fast response (9.2 s), a low operating temperature (130 °C) and good stability, for formaldehyde. On the basis of these results, via the reuse of agricultural waste, this study provides a new concept for the low-cost synthesis of environmentally friendly and effective multi-level tube/pore gas sensor materials. The Royal Society of Chemistry 2019-06-26 /pmc/articles/PMC9065453/ /pubmed/35514699 http://dx.doi.org/10.1039/c9ra02064k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Jia, Xilin
Wang, Ning
Tian, Junlong
Zhang, Yong
Lu, Donglin
Tan, Junjiang
Qiao, Ruyi
Chen, Lulu
Zhang, Wang
Zhong, Jianxin
A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax
title A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax
title_full A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax
title_fullStr A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax
title_full_unstemmed A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax
title_short A highly sensitive gas sensor employing biomorphic SnO(2) with multi-level tubes/pores structure: bio-templated from waste of flax
title_sort highly sensitive gas sensor employing biomorphic sno(2) with multi-level tubes/pores structure: bio-templated from waste of flax
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9065453/
https://www.ncbi.nlm.nih.gov/pubmed/35514699
http://dx.doi.org/10.1039/c9ra02064k
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