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Effect of deformation on dehydrogenation mechanisms of crumpled graphene: molecular dynamics simulation

机译:变形对皱纹石墨烯脱氢机理的影响:分子动力学模拟

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In this work, the effect of hydrostatic compression on dehydrogenation of crumpled graphene is investigated using molecular dynamics simulation. Crumpled graphene is a carbon structure composed of a large number of graphene flakes interacted by van der Waals forces. These ultralight materials have unique mechanical properties and can be used in various applications, for example, in hydrogen technologies. One of the important issues in the study of carbon structures is the search for the new materials for hydrogen storage and transportation. In the present work, it is shown that pores of crumpled graphene can be used as the caves for the storage of hydrogen atoms and molecules, and hydrostatic compression is an effective way of keeping hydrogen inside the caves. Based on the analysis of changes in the capacity of hydrogen absorption, it is found that the application of deformation leads to a significant improvement in the sorption characteristics of crumpled graphene. At the same time, hydrostatic compression of crumpled graphene leads to an increase in volumetric hydrogen capacity. It has been established that, with an increase in the degree of compression, the number of hydrogen atoms leaving the pores of crumpled graphene decreases after exposure at 300?K.?It is expected that the subsequent heating of the structure will lead to the release of hydrogen due to the opening of graphene flakes and an increase in thermal fluctuation oscillations of atoms, which is important for the dehydrogenation process.
机译:在这项工作中,使用分子动力学模拟研究了静水压缩对皱纹石墨烯脱氢的影响。皱缩的石墨烯是由范德华力相互作用的大量石墨烯薄片组成的碳结构。这些超轻材料具有独特的机械性能,可用于多种应用,例如氢技术。碳结构研究的重要问题之一是寻找用于储氢和运输氢的新材料。在目前的工作中,表明可以将皱褶的石墨烯的孔用作用于储存氢原子和分子的空穴,并且静水压缩是将氢保持在空穴内部的有效方法。基于对氢吸收能力的变化的分析,发现变形的施加导致皱缩的石墨烯的吸收特性的显着改善。同时,皱缩的石墨烯的静水压缩导致体积氢容量的增加。已经确定,随着压缩程度的增加,在300?K下暴露后,离开皱皱的石墨烯孔的氢原子数量会减少。预期随后的结构加热会导致释放由于石墨烯薄片的开放和原子的热波动振荡的增加,氢的含量增加,这对于脱氢过程很重要。

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