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Selective and sensitive toxic gas-sensing mechanism in a 2D Janus MoSSe monolayer

50

Citations

58

References

2022

Year

Abstract

With an inspiration of sensing toxic gases, this study is aimed at exploring the potential of a Janus MoSSe monolayer as a gas sensor. Here, we focused on the adsorption mechanism after the exposure to NH<sub>3</sub>, NO<sub>2</sub>, NO, HCN, CO<sub>2</sub>, CO, H<sub>2</sub>, H<sub>2</sub>S and SO<sub>2</sub> on both the S and Se sites of MoSSe. We investigated the structural geometries and electronic, sensing and electron-transport properties before and after adsorption of the aforementioned gases by applying DFT calculations. The results revealed the higher binding strength of NO<sub>2</sub>/SO<sub>2</sub> and NO on Se and S sites, respectively, among all the gas adsorptions on the MoSSe monolayer. Moreover, DOS revealed strong orbital contributions at <i>E</i><sub>F</sub>, which confirmed the n/p-type semiconducting character for the NO/NO<sub>2</sub> adsorbed MoSSe monolayer. Further, the specific work function alteration after the adsorption of NO<sub>2</sub>, SO<sub>2</sub> and NO indicated that the MoSSe monolayer could be a potential candidate for <i>Φ</i>-type gas sensor at 300 K. Additionally, the higher electron transmission and prominent electrical response values of 76.4/56 μA and 82 μA suggested a maximum sensitivity of 98%/89% and 93% at a particular voltage for NO<sub>2</sub>/SO<sub>2</sub> and NO on Se and S sites, respectively. Thus, our results promote surface selectivity, <i>i.e.</i> S or Se site, and better sensitivity with recycling potential could enable sensing application of the Janus MoSSe monolayer for toxic gases detection.

References

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