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结构 I 笼型水合物中甲烷分子在小笼和大笼中的受限:耦合平动-转动本征态的量子六维计算。

Methane molecule confined in the small and large cages of structure I clathrate hydrate: Quantum six-dimensional calculations of the coupled translation-rotation eigenstates.

机构信息

Department of Physical Chemistry, Rudjer Bosković Institute, Zagreb, Croatia.

出版信息

J Chem Phys. 2009 Dec 14;131(22):224308. doi: 10.1063/1.3268623.

Abstract

We report fully coupled quantum six-dimensional (6D) calculations of the translation-rotation (T-R) energy levels of CH(4) molecule inside the small dodecahedral (5(12)) and large tetracaidecahedral (5(12)6(2)) cages of the structure I clathrate hydrate. The quantum dynamics of the three translational and three rotational degrees of freedom of CH(4) are treated rigorously, while the guest molecule and the host cavities are taken to be rigid. The matrix of the full 6D T-R Hamiltonian is diagonalized in the product basis of contracted translational and angular basis functions, generated by solving two reduced-dimension (3D) eigenvalue problems. A pairwise additive CH(4)-cage 6D potential energy surface (PES) is employed, constructed using the anisotropic CH(4)-H(2)O pair potential which was utilized previously in the molecular dynamics simulations of methane hydrate. Our calculations elucidate the key features of the T-R energy level structure of the nanoconfined CH(4). The rotational levels of methane exhibit an elaborate pattern of splittings caused by the angular anisotropy of the environment; the splitting patterns are identical for both types of cages. Translationally excited T-R states in the small cage are assigned in terms of the quantum numbers n and l of the 3D isotropic harmonic oscillator and those in the large cage using the Cartesian quantum numbers. Extensive comparison is made with the data from the inelastic neutron scattering studies of methane hydrate, allowing an assessment of the accuracy of the 6D PES employed.

摘要

我们报告了完全耦合的量子六维(6D)计算,用于研究 CH(4)分子在结构 I 笼型水合物的小十二面体(5(12))和大十四面体(5(12)6(2))笼内的平移-旋转(T-R)能级。CH(4)的三个平移和三个旋转自由度的量子动力学被严格处理,而客体分子和主体腔被视为刚性的。全 6D T-R 哈密顿矩阵在收缩平移和角基函数的乘积基中对角化,通过求解两个降维(3D)特征值问题生成。采用了成对附加的 CH(4)-笼 6D 势能面(PES),该 PES 使用先前在甲烷水合物分子动力学模拟中使用的各向异性 CH(4)-H(2)O 偶极子对势构建。我们的计算阐明了纳米受限 CH(4)的 T-R 能级结构的关键特征。甲烷的转动能级表现出由环境的角各向异性引起的复杂分裂模式;两种笼型的分裂模式相同。小笼中激发的 T-R 态根据 3D 各向同性谐振子的量子数 n 和 l 以及大笼中的笛卡尔量子数来分配。与甲烷水合物的非弹性中子散射研究的数据进行了广泛的比较,从而评估了所使用的 6D PES 的准确性。

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