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Theoretical study of strained porous graphene structures and their gas separation properties

机译:应变多孔石墨烯结构及其气体分离特性的理论研究

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摘要

The structural deformation of porous graphene (PG) under tensile stress and the diffusion properties of H2, O2 and CO2 through PG under different strain conditions have been investigated using the first-principles density functional theory. It is found that the application of a tensile stress can effectively increase the diffusion rate of H2, O2, and CO2 in PG by up to 7,13, and 20 orders of magnitude, respectively. Therefore, we propose that applying tensile stress is an effective way to control the diffusion rate of gases through PG. By applying sufficiently large tensile stress, one might able to use PG for filtering larger gas molecules such as O2 in addition to previously proposed H2. The results open up an opportunity to utilize PG as a controllable gas separation membrane, leading to wide range of energy and environmental applications.
机译:利用第一性原理密度泛函理论研究了多孔石墨烯在拉伸应力下的结构变形以及H,O2和CO2在不同应变条件下通过PG的扩散特性。已经发现,施加张应力可以有效地将PG中H2,O2和CO2的扩散速率分别提高多达7、13和20个数量级。因此,我们建议施加张应力是控制气体通过PG扩散速率的有效方法。通过施加足够大的拉伸应力,除了先前提出的H2之外,人们可能还可以使用PG来过滤较大的气体分子,例如O2。结果为利用PG作为可控制的气体分离膜提供了机会,从而导致了广泛的能源和环境应用。

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