首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Influence of the Intermolecular Interactions on the Mobility of Heptane in the Supercages of MCM-22 Zeolite. A Molecular Dynamics Study
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Influence of the Intermolecular Interactions on the Mobility of Heptane in the Supercages of MCM-22 Zeolite. A Molecular Dynamics Study

机译:分子间相互作用对庚烷在MCM-22沸石超笼中流动性的影响。分子动力学研究

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摘要

Molecular dynamics techniques have been used to simulate the diffusion of n-heptane in the supercage system of purely siliceous MCM-22 zeolite at 750 K. Diffusion through the 12-member-ring (MR) large cavities is dominated by intracage motion due to the presence of preferential minimum-energy positions at the top and bottom of the supercage forming the 12-MR pockets. Molecules in singly occupied supercages show higher diffusivity because there is no impediment for intracage motions other than the small activation energy. Molecules in doubly occupied supercages show lower diffusivity and intermolecular contacts preclude intracage jumps. Finally, higher loadings allow the intercage region to be more populated and the possibility of intercage diffusion when the n-heptane orientation is favorable. The intercage diffusion is analyzed on the basis of the energy path for the intercage motion and on the orientational probability for intercage jumps.
机译:分子动力学技术已被用来模拟正庚烷在750 K的纯硅质MCM-22沸石的超笼体系中的扩散。通过12成员环(MR)大腔的扩散主要是由于笼内运动引起的。在形成12-MR袋的超级笼的顶部和底部存在优先的最小能量位置。单个占据的超笼中的分子显示出较高的扩散性,因为除了小的活化能外,没有任何笼内运动的障碍。双重占据的超笼中的分子显示出较低的扩散性,并且分子间的接触阻止了笼内跳跃。最后,当正庚烷取向有利时,较高的负载量可使间隙区更多,并且间隙扩散的可能性更高。基于笼间运动的能量路径和笼间跳跃的取向概率来分析笼间扩散。

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