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Molecular Structure and Dynamics of Nano-Confined Water: Computer Simulations of Aqueous Species in Clay, Cement, and Polymer Membranes

机译:纳米限制水的分子结构与动态:粘土,水泥和聚合物膜水分计算机模拟

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Molecular-level knowledge of the thermodynamic, structural, and transport properties of water confined by interfaces and nanopores of various materials is crucial for quantitative understanding and prediction of many natural and technological processes, including carbon sequestration, water desalination, nuclear waste storage, cement chemistry, fuel cell technology, etc. Computational molecular modeling is capable to significantly complement the experimental investigations of such systems by providing invaluable atomic-scale information leading to improved understanding of the specific effects of the substrate structure and composition on the structure, dynamics and reactivity of interfacial and nano-confined aqueous solutions. This paper offers a brief overview of recent efforts to quantify some of these effects for individual H_2O molecules and hydrated ions confined at the interfaces and in nanopores of several typical hydrophilic and hydrophobic materials. The first molecular layer of aqueous solution at all substrates is often highly ordered, indicating reduced translational and orientational mobility of the H_2O molecules. This ordering cannot be simply described as "ice-like", but rather resembles the behavior of supercooled water or amorphous ice, although with very significant substrate-specific variations.
机译:由界面和各种材料狭窄的水的热力学,结构和运输性能的分子水平知识对于许多自然和技术过程的定量理解和预测,包括碳封存,水海水淡化,核废料储存,水泥化学,这是至关重要的,燃料电池技术等。计算分子建模能够通过提供无价的原子尺度信息来显着补充这种系统的实验研究,这导致改善了对基板结构和组成对结构,动态和反应性的特定效果的理解界面和纳米限制水溶液。本文简要介绍了近期努力量化各种H_2O分子的一些效果,并在界面内限制在界面和几种典型的亲水和疏水材料的纳米孔中。所有基材的第一个水溶液的分子层通常有高度有序,表明H_2O分子的平移和取向迁移率降低。这种顺序不能简单地描述为“冰类似”,而是类似于过冷水或无定形冰的行为,尽管具有非常显着的基材特异性变化。

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