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插层硅酸盐结构分析中建模与实验的结合

Combination of modeling and experiment in structure analysis of intercalated layer silicates.

作者信息

Capková Pavla, Pospísil Miroslav, Weiss Zdenek

机构信息

Faculty of Mathematics and Physics, Charles University Prague, Ke Karlovu 3, 12116, Prague, Czech Republic.

出版信息

J Mol Model. 2003 Jun;9(3):195-205. doi: 10.1007/s00894-002-0106-9. Epub 2003 Apr 16.

Abstract

A strategy for the structure analysis of intercalated layer silicates based on a combination of modeling (i.e. force field calculations) and experiment is presented. Modeling in conjunction with experiment enables us to analyze the disordered intercalated structures of layer silicates where conventional diffraction analysis fails. Experiment plays a key role in the modeling strategy and in corroboration of the modeling results. X-ray powder diffraction and IR spectroscopy were found to be very useful complementary experiments to molecular modeling. Molecular mechanics and molecular dynamics simulations were carried out in the Cerius2 and Materials Studio modeling environments. An overview is given of the structures of layer silicates, especially smectites intercalated with various inorganic and organic guest species. Special attention is paid to the ordering of guests in the interlayer space, as it is important for the practical applications of these intercalates, where the interlayer porosity, photofunctions, etc. must be controlled. Figure Structure of montmorillonite intercalated with octadecylamine via ion-dipole interaction with the maximum concentration of guests corresponding to the monolayer arrangement of guests with basal spacing 33.3 A. The Na cations remaining in the interlayer are visualized as pink balls

摘要

本文提出了一种基于建模(即力场计算)与实验相结合的插层层状硅酸盐结构分析策略。建模与实验相结合使我们能够分析传统衍射分析无法处理的层状硅酸盐无序插层结构。实验在建模策略及对建模结果的确证中起着关键作用。X射线粉末衍射和红外光谱被证明是与分子建模非常有用的互补实验。在Cerius2和Materials Studio建模环境中进行了分子力学和分子动力学模拟。本文综述了层状硅酸盐的结构,特别是插层有各种无机和有机客体物种的蒙脱石。特别关注客体在层间空间的有序排列,因为这对于这些插层化合物的实际应用很重要,在实际应用中,层间孔隙率、光功能等必须得到控制。图 通过离子 - 偶极相互作用插层十八烷基胺的蒙脱石结构,其中客体的最大浓度对应于具有33.3 Å 基面间距的客体单层排列。层间剩余的Na阳离子显示为粉红色球。

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