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碳纳米管中旋转氢分子的光谱。

Spectroscopy of a rotating hydrogen molecule in carbon nanotubes.

机构信息

Instituto de Física Fundamental (C.S.I.C.), Serrano 123, E-28006, Madrid, Spain.

出版信息

Phys Chem Chem Phys. 2019 Feb 13;21(7):3423-3430. doi: 10.1039/c8cp04109a.

Abstract

A first-principles study of the spectroscopy of a single hydrogen molecule rotating inside and outside of carbon nanotubes is presented. Density functional theory (DFT)-based symmetry-adapted perturbation theory (SAPT) is applied to analyze the influence of the rotation in the dispersionless and dispersion energy contributions to the adsorbate-nanotube interaction. A potential model for the H2-nanotube interaction is proposed and applied to derive the molecular energy levels of the rotating hydrogen molecule. The SAPT-based analysis shows that a subtle balance between the dispersionless and dispersion contributions is key in determining the angular dependence of the H2-nanotube interaction, which is strongly influenced by the diameter of the carbon nanotubes. As a consequence, the structure of molecular energy levels is very different in wide and narrow nanotubes with the diameter above and below 1 nanometer, respectively. Strong anisotropy effects lead to a rather constrained rotation of molecular hydrogen inside narrow nanotubes.

摘要

本文对单氢分子在碳纳米管内外旋转的光谱进行了第一性原理研究。基于密度泛函理论(DFT)的对称自适应微扰理论(SAPT)被应用于分析旋转对色散和色散能对吸附物-纳米管相互作用的影响。提出了一个氢-纳米管相互作用的势模型,并应用于推导旋转氢分子的分子能级。基于 SAPT 的分析表明,在确定氢-纳米管相互作用的角依赖性方面,无弥散和弥散贡献之间的微妙平衡是关键,而这又受到碳纳米管直径的强烈影响。因此,在直径分别大于和小于 1 纳米的宽和窄纳米管中,分子能级的结构非常不同。强烈的各向异性效应导致分子氢在窄纳米管内的旋转受到相当大的限制。

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