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C₈₀和Si₈₀富勒烯储存稀有气体最大容量的理论预测。

Theoretical prediction of maximum capacity of C₈₀ and Si₈₀ fullerenes for noble gas storage.

作者信息

Mahdavifar Zabiollah

机构信息

Computational Chemistry Group, Department of Chemistry, Faculty of Science, Shahid Chamran University, Ahvaz, Iran.

出版信息

J Mol Graph Model. 2014 Nov;54:32-45. doi: 10.1016/j.jmgm.2014.08.006. Epub 2014 Sep 6.

Abstract

In this paper, we try to demonstrate that how many helium, neon and argon atoms can be trapped into fullerene cages until the pressure becomes large enough to break the C80 and Si80 frameworks. The maximum number of helium, neon and argon atoms which can be encapsulated into C80 fullerene, is found with 46, 24 and 10 atoms respectively. Having investigated the mechanism of C80 opening, we found that if the number of helium and argon atoms reaches to 50 and 12 respectively, the C-C bonds of C80 are broken and the gas molecules escaped from the fullerene cage. The final optimization geometries of latter complexes are similar to the shopping cart. Therefore, this appearance is named as molecular cart. Moreover, the maximum capacity of Si80 fullerene for encapsulated noble gas atoms is found 95, 56 and 22 for helium, neon and argon atoms correspondingly. It is worth highlighting that the new phenomenon of trapping argon atoms into Si80 cage is observed, when a Si atom randomly added to the center of Ar19@Si80 structures. In this case, the Si-Si bonds of Si80 are broken and two argon atoms will escape from the cage. After that, the framework rebuilds its structure like the initial one. This phenomenon is introduced as molecular cesarean section. The estimated internal pressure of Ng atoms trapped into the fullerene cages is also investigated. Results show that the maximum calculated internal pressure is related to He46@C80 and He95@Si80 structures with 212.3 and 144.1GPa respectively.

摘要

在本文中,我们试图证明在压力变得足够大以破坏C80和Si80框架之前,有多少氦、氖和氩原子可以被困在富勒烯笼中。发现能够被封装到C80富勒烯中的氦、氖和氩原子的最大数量分别为46、24和10个。在研究了C80打开的机制后,我们发现如果氦和氩原子的数量分别达到50和12,C80的C-C键就会断裂,气体分子从富勒烯笼中逸出。后一种配合物的最终优化几何形状类似于购物车。因此,这种外观被命名为分子购物车。此外,发现Si80富勒烯对封装惰性气体原子的最大容量对于氦、氖和氩原子分别为95、56和22。值得强调的是,当一个硅原子随机添加到Ar19@Si80结构的中心时,观察到氩原子被困在Si80笼中的新现象。在这种情况下,Si80的Si-Si键断裂,两个氩原子将从笼中逸出。之后,框架重新构建其结构,如同初始结构一样。这种现象被称为分子剖腹产。还研究了被困在富勒烯笼中的稀有气体原子的估计内部压力。结果表明,计算出的最大内部压力分别与He46@C80和He95@Si80结构相关,分别为212.3和144.1GPa。

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