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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Molecular Simulation of Structure and Diffusion at Smectite-Water Interfaces: Using Expanded Clay Interlayers as Model Nanopores
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Molecular Simulation of Structure and Diffusion at Smectite-Water Interfaces: Using Expanded Clay Interlayers as Model Nanopores

机译:蒙脱石-水界面的结构和扩散的分子模拟:使用膨胀粘土夹层作为模型纳米孔

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In geologic Settings relevant to a nuniber of extraction and, potential sequestration processes, nanopores botifided by clay mineral surfaces play a critical role in the transport of aqueous, species, Solution, structure and dynamics at,clay water interfaces are, quite different front, their bulk values, and the spatial extent of this disruption remains a topic of current interest. We have used molecular dynamics simulations to investigate the structure and diffusion of aqueous solutions in clay nanopores approximately 6 nm thick, comparing the effect of clay composition with model Na-hectorite and Na-montmorillonite surfaces. In addition to structural properties at the interface, water and ion diffusion coefficients were calculated within each aqueous layer at the interface, as well as in the central bulk-like region of the nanopore. The results show similar solution structure and diffusion properties at each surface, with:, subtle differences in sodium ad-sorption complexes and water structure in the first adsorbed layer due to different arrangements of layer hydroxyl groups in the two clay models. Interestingly, the extent of Surface disruption on bulk-like solution structure and diffusion extends to only a few water layers. A comparison of sodium ion residence times confirms similar behavior of inner-sphere and outer-sphere surface complexes at each clay surface, but similar to 1% of sodium ions adsorb in ditrigonal cavities on the hectorite surface. The presence of these anhydrous ions is consistent with highly immobile anhydrous ions seen in previous nuclear magnetic resonance spectroscopic measurements of hectorite pastes.
机译:在与大量提取和潜在螯合过程有关的地质环境中,由粘土矿物表面生化的纳米孔在水,物质,溶液,结构和动力学的运输中起着至关重要的作用,而粘土水界面在其前缘却大不相同。整体价值以及这种破坏的空间范围仍然是当前关注的话题。我们已经使用分子动力学模拟来研究水溶液在大约6 nm厚的粘土纳米孔中的结构和扩散,并将粘土成分与Na-锂蒙脱石和Na-蒙脱土模型表面的效果进行了比较。除了界面处的结构特性外,还计算了界面处每个水层内以及纳米孔的中央块状区域内的水和离子扩散系数。结果表明,在每个表面上都有相似的溶液结构和扩散特性,其中:由于两个粘土模型中层羟基的排列不同,第一吸附层中钠吸附复合物和水的结构存在细微差异。有趣的是,表面在块状溶液结构和扩散上的破坏程度仅扩展到几个水层。钠离子停留时间的比较证实了在每个粘土表面上内球和外球表面复合物的行为相似,但是与锂离子在锂蒙脱石表面的双三角型腔中的吸附量相似,约为1%。这些无水离子的存在与以前的锂蒙脱石浆料的核磁共振光谱测量中看到的高度固定的无水离子一致。

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