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External electric field and strains facilitated nitrogen dioxide gas sensing properties on 2D monolayer and bilayer SnS_2 nanosheets

机译:外部电场和菌株促进了2D单层和双层SNS_2纳米液的二氧化氮气体传感性能

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Two-dimensional (2D) nanostructures materials have attracted an exceptional interest in the structural, electronic and optical characteristics due to their ultrathin and flexible nature. Using first-principle simulations, we studied the electronic structures of Nitrogen dioxide adsorbed monolayer and bilayer SnS2 nanosheets. The results demonstrate that Nitrogen dioxide is physisorbed on monolayer and bilayer SnS2 nanosheets acting as acceptors with obvious charge transfer 0.03 e and 0.05 e from the basal to the adsorbate. Moreover, our results show that electric field and biaxial strains can drastically change the adsorption energy, electronic properties and charge transfer of Nitrogen dioxide adsorbed SnS2 systems. Namely, these external conditions are highly preferred and provide a practicable method for adjustable SnS2 based electrical devices and gas sensors. Especially, the giant Stark effect can easily render the NO2-adsorbed SnS2 system from semiconducting to metallic. These distinctive characters endow the SnS2 nanosheets with high sensitivity as a potential candidate for NO2 gas sensor.
机译:二维(2D)纳米结构材料由于其超薄和灵活性而引起了结构,电子和光学特性的特殊兴趣。使用第一原理模拟,研究了二氧化氮的电子结构吸附的单层和双层SNS2纳米晶片。结果表明,二氧化氮在单层和双层SNS2纳米蛋白酶上,作为具有明显电荷转移0.03 e和0.05 e的受体,从基础上的吸附剂中吸附。此外,我们的结果表明,电场和双轴菌株可以大大改变吸附能量,电子性质和氮二氧化氮吸附SNS2系统的电荷转移。即,这些外部条件非常优选,并提供一种可行的SNS2电气装置和气体传感器的可行方法。特别是,巨大的凝固效应可以容易地将NO2吸附的SNS2系统从半导体上呈现给金属。这些独特的字符赋予了SNS2纳米片,具有高灵敏度,作为NO2气体传感器的潜在候选者。

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