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首页> 外文期刊>The Journal of Chemical Physics >The effect of the condensed-phase environment on the vibrational frequency shift of a hydrogen molecule inside clathrate hydrates
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The effect of the condensed-phase environment on the vibrational frequency shift of a hydrogen molecule inside clathrate hydrates

机译:冷凝相环境对克拉酸盐水合物内氢分子振动频率偏移的影响

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We report a theoretical study of the frequency shift (redshift) of the stretching fundamental transition of an H-2 molecule confined inside the small dodecahedral cage of the structure II clathrate hydrate and its dependence on the condensed-phase environment. In order to determine how much the hydrate water molecules beyond the confining small cage contribute to the vibrational frequency shift, quantum five-dimensional (5D) calculations of the coupled translation-rotation eigenstates are performed for H-2 in the v = 0 and v = 1 vibrational states inside spherical clathrate hydrate domains of increasing radius and a growing number of water molecules, ranging from 20 for the isolated small cage to over 1900. In these calculations, both H-2 and the water domains are treated as rigid. The 5D intermolecular potential energy surface (PES) of H-2 inside a hydrate domain is assumed to be pairwise additive. The H-2-H2O pair interaction, represented by the 5D (rigid monomer) PES that depends on the vibrational state of H-2, v = 0 or v = 1, is derived from the high-quality ab initio full-dimensional (9D) PES of the H-2-H2O complex [P. Valiron et al., J. Chem. Phys. 129, 134306 (2008)]. The H-2 vibrational frequency shift calculated for the largest clathrate domain considered, which mimics the condensed-phase environment, is about 10% larger in magnitude than that obtained by taking into account only the small cage. The calculated splittings of the translational fundamental of H-2 change very little with the domain size, unlike the H-2 j = 1 rotational splittings that decrease significantly as the domain size increases. The changes in both the vibrational frequency shift and the j = 1 rotational splitting due to the condensed-phase effects arise predominantly from the H2O molecules in the first three complete hydration shells around H-2. Published by AIP Publishing.
机译:我们报告了H-2分子的延伸基波转变的频移(红移)的理论研究,限制在结构II包合物水合物的小十二章笼内及其对冷凝相环境的依赖性。为了确定超出狭窄的小笼子的水合物水分子有助于振动频率偏移,对v = 0和v中的H-2进行偶联的转换旋转特征的量子五维(5d)计算= 1个振动状态在球形包裹物中增加半径的水合物结构域和越来越多的水分子,从20个用于孤立的小笼子到1900多个。在这些计算中,H-2和水域都被视为刚性。假设水域内的H-2的5d分子间电位能表面(PE)是成对添加剂。由5D(刚性单体)PE表示的H-2-H2O对交互,其取决于H-2,v = 0或v = 1的振动状态,来自高质量的AB Initio全维( 9D)H-2-H2O复合物的PES [P.瓦罗罗·等人,J.Chem。物理。 129,134306(2008)]。针对所考虑的最大包裹域的H-2振动频率偏移,其模仿冷凝相环境,其幅度大约大约10%,而不是通过仅考虑小笼而获得的大小。 H-2的平移基础的计算分配器对域大小相比,与域尺寸不同,随着域尺寸增加而显着降低的旋转分裂。振动频移和J = 1由于冷凝相位效应而旋转分裂的变化主要来自在H-2周围的前三个完全水合壳中的H2O分子中主要出现。通过AIP发布发布。

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