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Dynamics of Graphene Nanodrums

机译:石墨烯纳米鼓的动力学

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摘要

Recently, it was proposed that graphene sheets deposited on silicon oxide can act as impermeable atomic membranes to standard gases, such as helium, argon, and nitrogen. It is assumed that graphene membrane is clamped over the surface due only to van der Waals forces. The leakage mechanism can be experimentally addressed only indirectly. In this work we have carried out molecular dynamics simulations to study this problem. We have considered nano-containers composed of a chamber of silicon oxide filled with gas and sealed by single and multi-layer graphene membranes. The obtained results are in good qualitative agreement with the experimental data. We observed that the graphene membranes remain attached to the substrate for pressure values up to two times the largest value experimentally investigated. We did not observe any gas leakage through the membrane/substrate interface until the critical limit is reached and then a sudden membrane detachment occurs.
机译:最近,有人提出,沉积在氧化硅上的石墨烯片可以充当标准气体(例如氦气,氩气和氮气)的不可渗透的原子膜。假定仅由于范德华力将石墨烯膜夹紧在表面上。泄漏机制只能通过实验间接解决。在这项工作中,我们进行了分子动力学模拟来研究这个问题。我们已经考虑了由一个充满气体并被单层和多层石墨烯膜密封的氧化硅腔室组成的纳米容器。所得结果与实验数据吻合良好。我们观察到,石墨烯膜保持附着在基材上的压力值高达实验研究的最大值的两倍。直到达到临界极限,然后突然发生膜分离,我们才观察到有任何气体通过膜/基底界面泄漏。

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