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硼烷富勒烯中的动态性会影响两个惰性气体原子之间的受限诱导键合吗?

Can the Fluxionality in Borospherene Influence the Confinement-Induced Bonding between Two Noble Gas Atoms?

机构信息

Advanced Technology Development Centre, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.

Department of Chemistry, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.

出版信息

Molecules. 2022 Dec 8;27(24):8683. doi: 10.3390/molecules27248683.

Abstract

A density functional theory study is performed to determine the stability and bonding in the neon dimer inside the BN fullerene cage, the fluxional B cage, and within non-fluxional cages such as BN and C. The nature of bonding in the Ne encapsulated B is compared with the that in other cages in an attempt to determine whether any possible alterations are brought about by the dynamical nature of the host cage apart from the associated confinement effects. The bonding analysis includes the natural bond order (NBO), Bader's Atoms-in-Molecules electron density analysis (AIM), and energy decomposition analysis (EDA), revealing the non-covalent nature of the interactions between the Ne atoms and that between the Ne and the cage atoms. The formation of all the Ne@cage systems is thermochemically unfavourable, the least being that for the BN cage, which can easily be made favourable at lower temperatures. The Ne-Ne distance is lowest in the smallest cage and increases as the cage size increase due to steric relaxation experienced by the dimer. The dynamical picture of the systems is investigated by performing ab initio molecular dynamics simulations using the atom-centred density matrix propagation (ADMP) technique, which shows the nature of the movement of the dimer inside the cages, and by the fact that since it moves as a single entity, a weak bonding force holds them together, apart from their proven kinetic stability.

摘要

采用密度泛函理论研究了 BN 富勒烯笼内、通量 B 笼内以及 BN 和 C 等非通量笼内氖二聚体的稳定性和键合。将封装在 Ne 中的 B 的成键性质与其他笼中的成键性质进行了比较,试图确定除了相关的约束效应之外,主体笼的动态性质是否会带来任何可能的变化。键合分析包括自然键序(NBO)、Bader 的分子内电子密度分析(AIM)和能量分解分析(EDA),揭示了 Ne 原子之间以及 Ne 和笼原子之间相互作用的非共价性质。所有 Ne@cage 体系的形成都是热化学不利的,最不利的是 BN 笼,在较低温度下很容易变得有利。由于二聚体经历了空间位阻松弛,最小的笼子中的 Ne-Ne 距离最低,随着笼尺寸的增加而增加。通过使用基于原子的密度矩阵传播(ADMP)技术进行从头算分子动力学模拟,研究了体系的动力学图像,这表明了二聚体在笼内的运动性质,并且由于它作为一个整体运动,较弱的键合力将它们聚集在一起,除了它们已被证明的动力学稳定性之外。

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