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Global-density fluctuations in methane clathrate hydrates in externally applied electromagnetic fields

机译:外部施加电磁场中甲烷包裹物水合物的全局密度波动

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摘要

Non-equilibrium molecular-dynamics simulations of bulk methane clathrate hydrates have been conducted in a range of externally applied electromagnetic (e/m) fields. Studies into frequencies of system(or "global")-mass-density fluctuations showed that these clathrates have three major modes: the dominant one is attributable to water molecules' librations and occurs at 720 cm(-1), regardless of any applied e/m fields. One of the more minor system-density fluctuations arises at 10-12 cm(-1) and is caused by the propagation of local-density fluctuations; again, this is independent of e/m fields. The final density fluctuation is caused by e/m fields, and it only becomes apparent for field strengths of 1.2 V/nm or higher. The frequency of this mode is always twice the frequency of the applied e/m field. It was shown that the main qualitative features of the translational and librational densities of states (DOSs) were unaffected by the application of e/m fields; however, a slight coupling effect was observed, producing a peak in all DOSs at the frequency of the applied field. This study showed that e/m fields below a certain intensity threshold do not lead to any marked structural distortion or dissociation effect on pre-existing bulk clathrates, in which the hydrogen-bonding structure of the lattice remains intact. This is verified by system-density and configurational-energy values as well as radial distribution functions. Published by AIP Publishing.
机译:本体甲烷包合物水合物的非平衡分子动力学模拟已经在一系列外部施加的电磁(E / M)场中进行。研究系统的频率(或“全球”) - 质量密度波动表明,这些克拉族有三种主要模式:占主导地位是归因于水分子的比例,并且在720厘米(-1)时,无论任何应用的e如何/ m字段。其中一个较小的系统密度波动产生10-12厘米(-1),并且由局部密度波动的传播引起;同样,这与E / M字段无关。最终的密度波动是由E / M字段引起的,并且对于1.2V / nm或更高的场强仅变得显而易见。此模式的频率始终是应用E / M字段的频率的两倍。结果表明,州(DOSS)的平移和陈词密度的主要定性特征不受E / M领域的应用影响;然而,观察到轻微的耦合效果,在所施加的场的频率下在所有弓形中产生峰值。该研究表明,低于某个强度阈值的E / M字段不会导致对预先存在的散装克拉族的任何明显的结构变形或离解效果,其中晶格的氢键结构保持完整。这通过系统密度和配置 - 能量值以及径向分布函数来验证。通过AIP发布发布。

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