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Dynamics of benzene molecules situated in metal-organic frameworks

机译:金属有机骨架中苯分子的动力学

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In this paper, we investigate the gyroscopic motion of a benzene molecule C6H6, which comprises an inner carbon ring and an outer hydrogen ring, and is suspended rigidly inside a metal-organic framework. The metal-organic framework provides a sterically unhindered environment and an electronic barrier for the benzene molecule. We model such gyroscopic motion from the inter-molecular interactions between the benzene ring and the metal-organic framework by both the Columbic force and the van der Waals force. We also capture additional molecular interactions, for example due to sterical compensations arising from the carboxylate ligands between the benzene molecule and the framework, by incorporating an extra empirical energy into the total molecular energy. To obtain a continuous approximation to the total energy of such a complicated atomic system, we assume that the atoms of the metal-organic framework can be smeared over the surface of a cylinder, while those for the benzene molecule are smeared over the contour line of the molecule. We then approximate the pairwise molecular energy between the molecules by performing line and surface integrals. We firstly investigate the freely suspended benzene molecule inside the framework and find that our theoretical results admit a two-fold flipping, with the possible maximum rotational frequency reaching the terahertz regime, and gigahertz frequencies at room temperature. We also show that the electrostatic interaction and the thermal energy dominate the gyroscopic motion of the benzene molecule, and we deduce that the extra energy term could possibly reduce the rotational frequency of the rigidly suspended benzene molecule from gigahertz to megahertz frequencies at room temperature, and even lower frequencies might be obtained when the strength of these interactions increases.
机译:在本文中,我们研究了一个苯分子C6 H6的陀螺运动,该分子由一个内碳环和一个外氢环组成,并刚性地悬浮在金属有机骨架内部。金属有机骨架为苯分子提供了空间不受阻碍的环境和电子屏障。我们通过哥伦比力和范德华力通过苯环和金属有机骨架之间的分子间相互作用来模拟这种陀螺运动。我们还通过将额外的经验能合并到总分子能中来捕获其他分子相互作用,例如由于苯分子与骨架之间的羧酸盐配体引起的空间补偿。为了获得这样一个复杂原子系统的总能量的连续近似值,我们假设金属有机骨架的原子可以涂抹在圆柱体的表面上,而苯分子的原子则涂抹在圆柱体的轮廓线上。分子。然后,我们通过执行线和表面积分来近似分子之间的成对分子能量。我们首先研究了骨架中自由悬浮的苯分子,发现我们的理论结果承认存在两次翻转,可能的最大旋转频率达到了太赫兹状态,在室温下达到了千兆赫兹频率。我们还表明,静电相互作用和热能主导着苯分子的陀螺运动,并且我们推断出额外的能量项可能会在室温下将刚性悬浮的苯分子的旋转频率从千兆赫降低到兆赫。当这些相互作用的强度增加时,甚至可以获得更低的频率。

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