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首页> 外文期刊>ACS nano >Cooperative Interplay of van der Waals Forces and Quantum Nuclear Effects on Adsorption: H at Graphene and at Coronene
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Cooperative Interplay of van der Waals Forces and Quantum Nuclear Effects on Adsorption: H at Graphene and at Coronene

机译:范德华力和量子核效应对吸附的相互作用:石墨烯和并苯上的H

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摘要

The energetic barriers that atoms and molecules often experience when binding to surfaces are incredibly important to a myriad of chemical and physical processes. However, these barriers are difficult to describe accurately with current computer simulation approaches. Two prominent contemporary challenges faced by simulation are the role of van der Waals forces and nuclear quantum effects. Here we examine the widely studied model systems of hydrogen on graphene and coronene using a van der Waals inclusive density functional theory approach together with path integral molecular dynamics at 50 K. We find that both van der Waals and quantum nuclear effects work together in a cooperative manner to dramatically reduce the barriers for hydrogen atoms to adsorb. This suggests that the low temperature hydrogenation of graphene is easier than previously thought and in more general terms that the combined roles of van der Waals and quantum tunnelling can lead to qualitative changes in adsorption.
机译:原子和分子与表面结合时经常遇到的高能垒对于无数的化学和物理过程都极为重要。但是,使用当前的计算机仿真方法很难准确描述这些障碍。模拟面临的两个当代突出挑战是范德华力和核量子效应的作用。在这里,我们使用范德华包含性密度泛函理论方法以及在50 K时的路径积分分子动力学,研究了广泛研究的氢在石墨烯和冠冕烯上的模型系统。我们发现范德华和量子核效应在协同作用下共同起作用大大减少氢原子吸附的障碍的方法。这表明石墨烯的低温氢化比以前想像的要容易,更笼统地说,范德华与量子隧穿的结合作用可导致吸附质的变化。

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