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甲基石墨烯:通过氢化作用调整甲基石墨烯的结构和电子特性

Me-graphane: tailoring the structural and electronic properties of Me-graphene hydrogenation.

作者信息

Marinho Enesio, da Silva Autreto Pedro Alves

机构信息

Centro de Ciências Naturais e Humanas, Universidade Federal do ABC (UFABC), Avenida dos Estados 5001, 09210-580 Santo André, São Paulo, Brazil.

出版信息

Phys Chem Chem Phys. 2021 Apr 22;23(15):9483-9491. doi: 10.1039/d0cp06684b.

Abstract

Graphene-based materials (GBMs) are a large family of materials that have attracted great interest due to potential applications. In this work, we applied first-principles calculations based on density functional theory (DFT) and fully atomistic reactive molecular dynamics (MD) simulations to study the structural and electronic effects of hydrogenation in Me-graphene, a non-zero bandgap GBM composed of both sp2 and sp3-hybridized carbon. Our DFT results show the hydrogenation can tune the electronic properties of Me-graphene significantly. The bandgap varies from 0.64 eV to 2.81 eV in the GGA-PBE approach, passing through metallic ground-states and a narrower bandgap state depending on the hydrogen coverage. The analyses of structural properties and binding energies have shown that all carbon atoms are in sp3 hybridization in hydrogenated Me-graphene with strong and stable C-H bonds, resulting in a boat-like favorable conformation for fully-hydrogenated Me-graphene. Our MD simulations have indicated that the hydrogenation is temperature-dependent for Me-graphene, and the covalent adsorption tends to grow by islands. Those simulations also show that the most favorable site, predicted by our DFT calculations, acts as trigger adsorption for the extensive hydrogenation.

摘要

基于石墨烯的材料(GBMs)是一大类由于潜在应用而引起极大关注的材料。在这项工作中,我们应用基于密度泛函理论(DFT)的第一性原理计算和全原子反应分子动力学(MD)模拟,来研究氢化对甲基石墨烯(一种由sp2和sp3杂化碳组成的非零带隙GBM)的结构和电子效应。我们的DFT结果表明,氢化可以显著调节甲基石墨烯的电子性质。在广义梯度近似(GGA-PBE)方法中,带隙从0.64电子伏特变化到2.81电子伏特,根据氢覆盖率会经过金属基态和一个较窄带隙状态。对结构性质和结合能的分析表明,在氢化的甲基石墨烯中所有碳原子都处于sp3杂化状态,具有强而稳定的C-H键,从而为完全氢化的甲基石墨烯形成了一种船状的有利构象。我们的MD模拟表明,甲基石墨烯的氢化过程与温度有关,共价吸附倾向于以岛状形式生长。这些模拟还表明,我们的DFT计算预测的最有利位点对广泛氢化起触发吸附作用。

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