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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Structure, Energetics, and Dynamics of Smectite Clay Interlayer Hydration: Molecular Dynamics and Metadynamics Investigation of Na-Hectorite
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Structure, Energetics, and Dynamics of Smectite Clay Interlayer Hydration: Molecular Dynamics and Metadynamics Investigation of Na-Hectorite

机译:蒙脱土层间水合的结构,能量学和动力学:钠锂蒙脱石的分子动力学和元动力学研究

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摘要

This paper presents a classical molecular dynamics (MD) and metadynamics investigation of the relationships between the structure, energetics, and dynamics of Na-hydroxyhectorite and serves to provide additional, molecular-scale insight into the interlayer hydration of this mineral. The computational results support a model for interlayer H2O structure and dynamics based on ~2H NMR spectroscopy and indicate that H2O molecules undergo simultaneous fast Iibrational motions about the H2O C2 symmetry axis and site hopping with C3 symmetry with respect to the surface normal. Hydration energy minima occur at one-, one-and-one-half-, and two-water-layer hydrates, which for the composition modeled correspond to 3, 5.5, and 10 H2O/Na~+, respectively. Na~+ ions are coordinated by basal O atoms (O_(MIN)) at the lowest hydration levels and by H2O molecules (O_(H2O)) in the two-layer hydrate, and H2O molecules have an average of three H-bonds at the greatest hydration levels. The metadynamics calculations yield activation energies for site hopping of H2O molecules of ~6.0 kj/mol for the one-layer structure and ~3.3 kj/mol for hopping between layers in the two-layer structure. Computed diffusion coefficients for water and Na~+ are substantially less than in bulk liquid water, as expected in a nanoconfined environment, and are in good agreement with previous results.
机译:本文介绍了Na-羟基锂蒙脱石的结构,能量和动力学之间关系的经典分子动力学(MD)和超动力学研究,并为该矿物的层间水合提供了更多的分子尺度见解。计算结果支持基于〜2H NMR光谱的层间H2O结构和动力学模型,并表明H2O分子同时围绕H2O C2对称轴进行快速初始运动,并相对于表面法线以C3对称性进行站点跳跃。水合能极小值出现在一层,一半和两层水合物中,对于模拟的组成,它们分别对应于3、5.5和10 H2O / Na〜+。 Na〜+离子由最低水合度的基础O原子(O_(MIN))和两层水合物中的H2O分子(O_(H2O))进行配位,并且H2O分子在以下位置平均具有三个H键最大的水合作用水平。通过元动力学计算,H2O分子的单层结构跳跃产生的活化能为〜6.0 kj / mol,而两层结构中的层间跳变的活化能为〜3.3 kj / mol。如在纳米密闭环境中所预期的,水和Na〜+的计算扩散系数大大小于散装液态水中的扩散系数,并且与先前的结果非常吻合。

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