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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Molecular Dynamics Simulations of Water Structure and Diffusion in a 1 nm Diameter Silica Nanopore as a Function of Surface Charge and Alkali Metal Counterion Identity
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Molecular Dynamics Simulations of Water Structure and Diffusion in a 1 nm Diameter Silica Nanopore as a Function of Surface Charge and Alkali Metal Counterion Identity

机译:1nm直径二氧化硅纳米水中水结构和扩散的分子动力学模拟,作为表面电荷和碱金属抗衡离子特性

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Water confined in nanopores particularly in pores narrower than 2 nm-displays distinct physicochemical properties that remain incompletely examined despite their importance in nanofluidics, molecular biology, geology, and materials sciences. Here, we use molecular dynamics simulations to investigate the coordination structure and mobility of water and alkali metals (Li, Na, K, Cs) inside a 1 nm diameter cylindrical silica nanopore as a function of surface charge density, a model system particularly relevant to the alteration kinetics of silicate glasses and minerals in geologic formations. We find that the presence of a negative surface charge and adsorbed counterions within the pore strongly impacts water structure and dynamics. In particular, it significantly orients water O-H bonds toward the surface and slows water diffusion by almost 1 order of magnitude. Ion crowding in the charged nanopore enhances the tendency of counterions to coordinate closely with the silica surface, which moderates the impact of ions on water dynamics. Co-ions are strongly excluded from the nanopore at all surface charges, suggesting that the 1 nm diameter cylindrical silica nanopores likely exhibit nearly ideal semipermeable membrane transport properties.
机译:水密闭,在纳米孔特别是在窄的孔隙大于2纳米 - 显示仍然不完全,尽管它们在纳米流体学,分子生物学,地质学,和材料科学重要性检查不同的物理化学性质。这里,我们使用分子动力学模拟来调查纳米直径1内的水和碱金属(锂,钠,钾,铯)的配位结构和移动圆筒二氧化硅纳米孔表面电荷密度,特别相关的模型系统的功能在地质构造硅酸盐玻璃和矿物质的改变动力学。我们发现,一个表面负电荷的存在和吸附抗衡孔隙强烈影响水的结构和动力学内。特别是,它显著定向水-O-H键朝向表面并减慢水扩散通过几乎1个数量级。在带电纳米孔离子拥挤提高到与二氧化硅表面,密切配合抗衡离子的倾向,其缓和离子对水动力学的影响。共离子强烈从在所有的表面电荷的纳米孔中排除,这表明为1nm直径的圆柱二氧化硅纳米孔有可能表现出几乎理想的半透膜输运性质。

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