Nanomaterials · 2023 · 19 citations · 48 references
The potential application of borophene as a sensing material for gas-sensing devices is investigated in this work. We utilize density functional theory (DFT) to systematically study the adsorption mechanism and sensing performance of χ<sub>3</sub>-borophene to search for high-sensitivity sensors for minor pollutant gases. We compare the results to those for two Pmmn borophenes. The first-principles calculations are used to analyze the sensing performance of the three different borophenes (2 Pmmn borophene, 8 Pmmn borophene, and χ<sub>3</sub>-borophene) on five leading harmful gases (CO, NH<sub>3</sub>, SO<sub>2</sub>, H<sub>2</sub>S, and NO<sub>2</sub>). The adsorption configuration, adsorption energy, and electronic properties of χ<sub>3</sub>-borophene are investigated. Our results indicate that the mechanism of adsorption on χ<sub>3</sub>-borophene is chemisorption for NO<sub>2</sub> and physisorption for SO<sub>2</sub> and H<sub>2</sub>S. The mode of adsorption of CO and NH<sub>3</sub> on χ<sub>3</sub>-borophene can be both physisorption and chemisorption, depending on the initially selected sites. Analyses of the charge transfer and density of states show that χ<sub>3</sub>-borophene is selective toward the adsorption of harmful gases and that N and O atoms form covalent bonds when chemisorbed on the surface of χ<sub>3</sub>-borophene. An interesting phenomenon is that when 8 Pmmn borophene adsorbs SO<sub>2</sub>, the gas molecules are dismembered and strongly adsorb on the surface of 8 Pmmn borophene, which provides a way of generating O<sub>2</sub> while adsorbing harmful substances. Overall, the results of this work demonstrate the potential applications of borophene as a sensing material for harmful gas sensing or removal.
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