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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Molecular-Dynamics and First-Principles Calculations of Raman Spectra and Molecular and Electronic Structure of Hydrogen Clusters in Hydrogen Clathrate Hydrate
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Molecular-Dynamics and First-Principles Calculations of Raman Spectra and Molecular and Electronic Structure of Hydrogen Clusters in Hydrogen Clathrate Hydrate

机译:包合物水合物中拉曼光谱的分子动力学和第一性原理计算以及氢簇的分子和电子结构

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摘要

Molecular-dynamics simulations and first-principles calculations are employed to understand vibrational spectroscopy and molecular and electronic structure of the encaged hydrogen molecules in hydrogen clathrate hydrate. The molecular-dynamics simulations, using empirical potentials, are performed to generate collections of the clathrate water cages with different hydrogen occupancies. The first-principles calculations, using Density Functional Theory with B3LYP hybrid density functionals for exchange and correlation, are carried out to optimize the structures and to calculate the Raman shift and activity of the stretching mode of the encaged hydrogen molecules. The Raman spectra are computed by a weighted moving average over a number of different structural configurations for different hydrogen occupancies. The results show that experimentally observed Raman peaks around 4120-4125 cm~(-1) are from small cages with single H2 occupancy and peaks around 4125-4150 cm~(-1) from those in the large cages with one to four H2 molecules. The Raman peaks of hydrogen molecules in the doubly occupied small cages are expected to be around or above the gas phase frequency 4155 cm~(-1). Molecular structural analysis shows that the single hydrogen molecule in the small cages and single to quadruple hydrogen molecules in the large cage are encaged in loose cages, while double hydrogen molecules in the small cage are confined in a tight cage. Normal-mode analysis shows that there is limited vibrational coupling for H2 molecules in doubly to quadruply occupied large cages while a strong vibrational coupling is observed in the doubly occupied small cage. The isovalue maps of total electron density and electrostatic potential suggest significant electron sharing between hydrogen molecules and water molecules, and important interaction between hydrogen and water oxygen atoms for confining the hydrogen clusters. The results help explain experimentally observed Raman spectra of hydrogen clathrates and provide new insights into the confinement effect by me water host framework on vibrational, molecular, and electronic properties of hydrogen molecules in the cages of clathrate hydrates.
机译:分子动力学模拟和第一性原理计算被用来理解包合物氢水合物中被包裹的氢分子的振动光谱以及分子和电子结构。使用经验电势进行分子动力学模拟,以生成具有不同氢占有率的笼形水笼的集合。使用密度泛函理论和B3LYP杂化密度泛函进行交换和关联,进行第一性原理计算,以优化结构并计算被包裹氢分子的拉曼位移和拉伸模式的活性。拉曼光谱是通过在多个不同结构构型上针对不同氢占有率的加权移动平均值计算得出的。结果表明,实验观察到的拉曼峰约在4120-4125 cm〜(-1)处,来自单个H2占据的小笼子,而峰值约在4125-4150 cm〜(-1)处在具有1至4个H2分子的大笼子中。 。预期在双重占据的小笼子中氢分子的拉曼峰在气相频率4155 cm〜(-1)左右或以上。分子结构分析表明,小笼子中的单个氢分子和大笼子中的单个至四个氢分子被包裹在松散的笼子中,而小笼子中的双氢分子则被限制在一个密闭的笼子中。正态分析表明,在双重占据到四倍占据的大笼子中,H2分子的振动耦合是有限的,而在双重占据的小笼子中观察到了强烈的振动耦合。总电子密度和静电势的等值图表明,氢分子和水分子之间有大量的电子共享,以及氢和水氧原子之间的重要相互作用以限制氢簇。结果有助于解释实验观察到的氢包合物的拉曼光谱,并为水包体框架对笼形水合物笼中氢分子的振动,分子和电子性质的限制作用提供新的见解。

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