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氮芥气分子与α-砷烯纳米片的相互作用研究——基于密度泛函理论的见解

Nitrogen mustard gas molecules and α-arsenene nanosheet interaction studies - A DFT insight.

作者信息

Bhuvaneswari R, Nagarajan V, Chandiramouli R

机构信息

School of Electrical & Electronics Engineering, SASTRA Deemed University, Tirumalaisamudram, Thanjavur, 613 401, India.

School of Electrical & Electronics Engineering, SASTRA Deemed University, Tirumalaisamudram, Thanjavur, 613 401, India.

出版信息

J Mol Graph Model. 2019 Nov;92:65-73. doi: 10.1016/j.jmgm.2019.07.004. Epub 2019 Jul 14.

Abstract

Bis(2-chloroethyl)ethylamine (HN-1) and Bis(2-chloroethyl)methylamine (HN-2) are two classifications under the blistering agents, which are taken as target nitrogen mustard gas in the current research. α-arsenene nanosheets in its puckered configuration, are employed as a prime material to detect the above mentioned gas molecules. The chemo-sensing nature of the base material towards the target gas is ascertained with the assistance of electronic and surface assimilating attributes with the help of density functional theory technique. Initially, the geometric firmness of the base material is ensured with formation energy, which was computed to be -4.262 eV/atom, and we studied the electronic properties like the density of states spectrum, band structure, and electron density. Furthermore, surface assimilating attributes like Bader charge transfer, adsorption energy, average energy gap variation are estimated at atomistic levels using ATK-VNL package. The adsorption of nitrogen mustard gas molecules on α-arsenene nanosheets shows physisorption type of binding. The average energy gap variation of α-arsenene nanosheets upon adsorption of nitrogen mustard gas molecules ranges from 1.33 to 4.1%. Hence, the results suggest that α-arsenene nanosheets can be used as a chemical nanosensor for nitrogen mustard gas.

摘要

双(2-氯乙基)乙胺(HN-1)和双(2-氯乙基)甲胺(HN-2)是起泡剂的两个分类,在当前研究中被视为目标氮芥气。呈褶皱构型的α-砷烯纳米片被用作检测上述气体分子的主要材料。借助密度泛函理论技术,通过电子和表面同化属性来确定基础材料对目标气体的化学传感性质。首先,通过计算得出形成能为-4.262 eV/原子,以此确保基础材料的几何稳定性,并且我们研究了诸如态密度谱、能带结构和电子密度等电子性质。此外,使用ATK-VNL软件包在原子水平上估计了诸如巴德电荷转移、吸附能、平均能隙变化等表面同化属性。氮芥气分子在α-砷烯纳米片上的吸附表现为物理吸附类型。吸附氮芥气分子后α-砷烯纳米片的平均能隙变化范围为1.33%至4.1%。因此,结果表明α-砷烯纳米片可作为氮芥气的化学纳米传感器。

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