Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition

Demand for the detection of carbon dioxide (CO2) is increasing in various fields, including air-quality monitoring, health care, and agriculture. Smart gas sensors, in which micromachined gas sensors are integrated with driving circuits, are desirable for the social development of the internet of th...

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Main Authors: Oh, Won-Chun, Liu, Yin, Sagadevan, Suresh, Fatema, Kamrun Nahar, Biswas, Md Rokon Ud Dowla
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Published: Taylor & Francis 2021
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Online Access:http://eprints.um.edu.my/28057/
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spelling my.um.eprints.280572022-07-19T08:20:08Z http://eprints.um.edu.my/28057/ Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition Oh, Won-Chun Liu, Yin Sagadevan, Suresh Fatema, Kamrun Nahar Biswas, Md Rokon Ud Dowla QD Chemistry Demand for the detection of carbon dioxide (CO2) is increasing in various fields, including air-quality monitoring, health care, and agriculture. Smart gas sensors, in which micromachined gas sensors are integrated with driving circuits, are desirable for the social development of the internet of things. In this study, CO2 sensors were fabricated and investigated. The sensors have LaNiSbWO4-G-PPy (LNSW-G-Ppy) stacked layers as a sensing material in electrodes. A CO2 response of 1.2 for a CO2 concentration of 1800 ppm was obtained with a low power consumption (approximately 17 mW). This high response may have resulted from a significant contribution of the resistance component near the electrode. Optical characterizations confirmed that the LaNiSbWO4-G-PPy gas sensor showed similar optical properties to a typical display device. From gas-sensing results, the LaNiSbWO4-G-PPy gas sensor exhibited high response to CO2 in concentration range of 200-4000 ppm at room temperature and high selectivity against CO2. Furthermore, the LaNiSbWO4-G-PPy gas sensors offer good repeatability, reproducibility, and measurement accuracy. A sensing mechanism of LaNiSbWO4-G-PPy gas sensor was explained based on the resistance change of graphene sensing layer via a direct charge transfer process. These results could pave the way to develop a new type of gas sensor. Taylor & Francis 2021-09-29 Article PeerReviewed Oh, Won-Chun and Liu, Yin and Sagadevan, Suresh and Fatema, Kamrun Nahar and Biswas, Md Rokon Ud Dowla (2021) Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition. Inorganic and Nano-Metal Chemistry, 51 (12). pp. 1803-1812. ISSN 2470-1556, DOI https://doi.org/10.1080/24701556.2020.1855197 <https://doi.org/10.1080/24701556.2020.1855197>. 10.1080/24701556.2020.1855197
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QD Chemistry
spellingShingle QD Chemistry
Oh, Won-Chun
Liu, Yin
Sagadevan, Suresh
Fatema, Kamrun Nahar
Biswas, Md Rokon Ud Dowla
Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition
description Demand for the detection of carbon dioxide (CO2) is increasing in various fields, including air-quality monitoring, health care, and agriculture. Smart gas sensors, in which micromachined gas sensors are integrated with driving circuits, are desirable for the social development of the internet of things. In this study, CO2 sensors were fabricated and investigated. The sensors have LaNiSbWO4-G-PPy (LNSW-G-Ppy) stacked layers as a sensing material in electrodes. A CO2 response of 1.2 for a CO2 concentration of 1800 ppm was obtained with a low power consumption (approximately 17 mW). This high response may have resulted from a significant contribution of the resistance component near the electrode. Optical characterizations confirmed that the LaNiSbWO4-G-PPy gas sensor showed similar optical properties to a typical display device. From gas-sensing results, the LaNiSbWO4-G-PPy gas sensor exhibited high response to CO2 in concentration range of 200-4000 ppm at room temperature and high selectivity against CO2. Furthermore, the LaNiSbWO4-G-PPy gas sensors offer good repeatability, reproducibility, and measurement accuracy. A sensing mechanism of LaNiSbWO4-G-PPy gas sensor was explained based on the resistance change of graphene sensing layer via a direct charge transfer process. These results could pave the way to develop a new type of gas sensor.
format Article
author Oh, Won-Chun
Liu, Yin
Sagadevan, Suresh
Fatema, Kamrun Nahar
Biswas, Md Rokon Ud Dowla
author_facet Oh, Won-Chun
Liu, Yin
Sagadevan, Suresh
Fatema, Kamrun Nahar
Biswas, Md Rokon Ud Dowla
author_sort Oh, Won-Chun
title Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition
title_short Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition
title_full Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition
title_fullStr Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition
title_full_unstemmed Polymer bonded Graphene- LaNiSbWO4 nanocomposite (G-LaNiSbWO4-PPy) for CO2 sensing performance under normal temperature condition
title_sort polymer bonded graphene- lanisbwo4 nanocomposite (g-lanisbwo4-ppy) for co2 sensing performance under normal temperature condition
publisher Taylor & Francis
publishDate 2021
url http://eprints.um.edu.my/28057/
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