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Doping and defect-induced germanene: A superior media for sensing H2S, SO2, and CO2 gas molecules

机译:掺杂和缺陷诱导的锗烯:一种用于感测H2S,SO2和CO2气体分子的优良介质

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First-principles calculations based on density functional theory (DFT) have been employed to investigate the structural, electronic, and gas-sensing properties of pure, defected, and doped germanene nanosheets. Our calculations have revealed that while a pristine germanene nanosheet adsorbs CO2 weakly, H2S moderately, and SO2 strongly, the introduction of vacancy defects increases the sensitivity significantly which is promising for future gas-sensing applications. Mulliken population analysis imparts that an appreciable amount of charge transfer occurs between gas molecules and a germanene nanosheet which supports our results for adsorption energies of the systems. The enhancement of the interactions between gas molecules and the germanene nanosheet has been further investigated by density of states. Projected density of states provides detailed insight of the gas molecule's contribution in the gas-sensing system. Additionally, the influences of substituted dopant atoms such as B, N, and Al in the germanene nanosheet have also been considered to study the impact on its gas sensing ability. There was no significant improvement found in the doped gas sensing capability of germanene over the vacancy defects, except for CO2 upon adsorption on N-doped germanene. (C) 2017 Elsevier B.V. All rights reserved.
机译:基于密度泛函理论(DFT)的第一性原理计算已用于研究纯,缺陷和掺杂的锗烯纳米片的结构,电子和气敏特性。我们的计算表明,虽然原始的锗烯纳米片吸收的CO2较弱,而H2S的吸收较弱,而SO2的吸收却很强,但引入空位缺陷会显着提高灵敏度,这对于未来的气体传感应用很有希望。 Mulliken种群分析表明,在气体分子和锗烯纳米片之间发生了相当数量的电荷转移,这支持了我们对系统吸附能的结果。通过状态密度进一步研究了气体分子与锗烯纳米片之间相互作用的增强。预计的状态密度可提供有关气体分子在气体传感系统中贡献的详细信息。另外,还考虑了锗纳米片中B,N和Al等掺杂原子的影响,以研究对其气体传感能力的影响。除吸附在氮掺杂锗烯上的CO2以外,锗对空位缺陷的掺杂气体感测能力没有显着改善。 (C)2017 Elsevier B.V.保留所有权利。

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