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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Orientational Ordering, Locking-in, and Distortion of CH4 Molecules in Methane Hydrate III under High Pressure
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Orientational Ordering, Locking-in, and Distortion of CH4 Molecules in Methane Hydrate III under High Pressure

机译:在高压下甲烷水合物III中CH4分子的取向排序,锁定和变形

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摘要

We investigate the effects of high pressure on the reorientational and vibrational dynamics of methane molecules embedded in methane hydrate III-the stable form of methane for pressures above 2 GPa at room temperature-by combining highpressure Raman spectroscopy with ab initio simulations including nuclear quantum effects. We observe a clear evolution of the system from a gas-filled ice structure, where methane molecules occupy the channels of the ice skeleton and rotate almost freely, to a CH4:D(2)0 compound where methane rotations are hindered, and methane and water dynamics are tightly coupled. The gradual orientational ordering of the guest molecules results in a complete locking-in at approximately 20 GPa. This happens along with a progressive distortion of the guest molecules. Finally, as pressure increases beyond 20 GPa, the system enters a strong mode coupling regime where methane guests and water hosts dynamics are intimately paired.
机译:我们研究了高压对甲烷水合物III嵌入甲烷分子的重新定位和振动动力学的影响 - 通过将高压拉曼光谱与包括核量子效应的AB初始模拟相结合,在室温下为2GPa的稳定形式的甲烷的重新定位和振动动力学。 我们观察到系统的清晰进化从填充煤气堆积,其中甲烷分子占据冰骨架的通道并几乎自由旋转,到CH 4:D(2)0化合物,其中甲烷旋转受阻,和甲烷和甲烷 水动力学紧密耦合。 客体分子的逐步取向排序导致约20GPa的完全锁定。 这与客体分子的渐进失真一起发生。 最后,随着压力增加超过20 GPA,系统进入强模式耦合制度,其中甲烷客人和水宿主动态紧密配对。

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