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A fresh look at dense hydrogen under pressure. II. Chemical and physical models aiding our understanding of evolving H-H separations

机译:在压力下重新观察浓氢。二。化学和物理模型有助于我们理解不断发展的H-H分离

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In order to explain the intricate dance of intramolecular (intra-proton-pair) H-H separations observed in a numerical laboratory of calculationally preferred static hydrogen structures under pressure, we examine two effects through discrete molecular models. The first effect, we call it physical, is of simple confinement. We review a salient model already in the literature, that of LeSar and Herschbach, of a hydrogen molecule in a spheroidal cavity. As a complement, we also study a hydrogen molecule confined along a line between two helium atoms. As the size of the cavityconfining distance decreases (a surrogate for increasing pressure), in both models the equilibrium proton separation decreases and the force constant of the stretching vibration increases. The second effect, which is an orbital or chemical factor, emerges from the electronic structure of the known molecular transition metal complexes of dihydrogen. In these the H-H bond is significantly elongated (and the vibron much decreased in frequency) as a result of depopulation of the _g bonding molecular orbital of H _2, and population of the antibonding _u MO. The general phenomenon, long known in chemistry, is analyzed through a specific molecular model of three hydrogen molecules interacting in a ring, a motif found in some candidate structures for dense hydrogen.
机译:为了解释在压力下计算上优选的静态氢结构的数值实验室中观察到的分子内(质子对)H-H分离的复杂过程,我们通过离散分子模型考察了两种作用。我们称之为物理效果的第一个效果是简单的限制。我们回顾了LeSar和Herschbach文献中的球体腔中氢分子的显着模型。作为补充,我们还研究了沿两个氦原子之间的直线限制的氢分子。随着模腔约束距离的减小(增加压力的替代物),在两个模型中,平衡质子分离减小,并且拉伸振动的力常数增大。第二效应是轨道或化学因素,是由已知的二氢分子过渡金属配合物的电子结构产生的。其中,由于H _2的_g键分子轨道的减少以及反键_u MO的聚集,导致H-H键显着延长(并且振动子的频率大大降低)。通过在环中相互作用的三个氢分子的特定分子模型对这种普遍存在的现象进行了化学分析,该分子模型是在环中相互作用的,这是在某些候选结构中发现的稠密氢原子。

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