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用于NO气体传感潜在应用的Janus ZrSSe单层的密度泛函理论研究

DFT Study on the Janus ZrSSe Monolayer for Its Potential Application in NO Gas Sensing.

作者信息

Zhang Mengyang, Xia Jianjun, Guo Gang, Guo Gencai, Xiao Landong, You Manqi, Luo Siwei, Chen Qiong, Luo Chaobo, He Chaoyu, Tang Chao

机构信息

Hunan Key Laboratory for Micro-Nano Energy Materials and Devices, Laboratory for Quantum Engineering and Micro-Nano Energy Technology, and School of Physics and Optoelectronics, Xiangtan University, Hunan 411105, China.

School of Science, Hunan Institute of Technology, Hengyang 421002, China.

出版信息

Langmuir. 2024 Aug 20;40(33):17348-17357. doi: 10.1021/acs.langmuir.4c01480. Epub 2024 Aug 12.

Abstract

The growth of industry has resulted in increased global air pollution, necessitating the urgent development of highly sensitive gas detectors. In this work, the adsorption of the Janus ZrSSe monolayer for CO, CO, NH, NO, NO, and O was studied by first-principles calculations. First, the stability of the ZrSSe monolayer is confirmed through calculations of cohesive energy and AIMD simulations. Furthermore, the calculations indicate that the Se layer exhibits higher selectivity and sensitivity toward gas molecules compared to the S layer. Specifically, among the gases adsorbed on the Se layer, NO has the shortest adsorption distance (1.804 Å), the lowest adsorption energy (-0.424 eV), and the greatest electron transfer (0.098 e). Additionally, density of states analysis reveals that adsorption of NO, NO, and O on the Janus ZrSSe monolayer can induce a transition from a nonmagnetic to a magnetic state. The adsorption of NO not only alters the magnetic state but also induces a transition from a semiconductor to metal, which is highly advantageous for gas sensing applications. There results suggest that the Janus ZrSSe monolayer has the potential to serve as a highly sensitive detector for NO gas.

摘要

工业的发展导致全球空气污染加剧,因此迫切需要开发高灵敏度的气体探测器。在这项工作中,通过第一性原理计算研究了Janus ZrSSe单层对CO、CO、NH、NO、NO和O的吸附情况。首先,通过凝聚能计算和AIMD模拟证实了ZrSSe单层的稳定性。此外,计算表明,与S层相比 Se层对气体分子表现出更高的选择性和灵敏度。具体而言,在吸附在Se层上的气体中,NO的吸附距离最短(1.804 Å),吸附能最低(-0.424 eV),电子转移最大(0.098 e)。此外,态密度分析表明,NO、NO和O在Janus ZrSSe单层上的吸附可诱导从非磁性状态到磁性状态的转变。NO的吸附不仅改变了磁性状态,还诱导了从半导体到金属的转变,这对气体传感应用非常有利。这些结果表明,Janus ZrSSe单层有潜力用作NO气体的高灵敏度探测器。

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