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Water dynamics in hydrated amorphous materials: a molecular dynamics study of the effects of dehydration in amorphous calcium carbonate

机译:水合无定形材料中的水动力学:脱水在无定形碳酸钙作用的分子动力学研究

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Amorphous calcium carbonate (ACC) is often a critical transient phase in the formation of crystalline phases of CaCO3 via dehydration of hydrated ACC. The behavior of the water molecules plays a pivotal role in this transformation. We report here the dynamics of water molecules in ACC at hydration levels from CaCO3 center dot 1H(2)O to CaCO3 center dot 0.25H(2)O using molecular dynamics (MD) simulations. Due to the presence of highly hydrophilic Ca2+ and the strong H-bond acceptor CO32-, most of the water molecules in our simulations have restricted translational and orientational dynamics. These are referred here as 'slow water'. However, a small fraction of them show high diffusivity at all hydration states and are referred here as 'fast water'. The computed diffusion coefficients of the slow waters, as extrapolated from simulation results, yield diffusion distances of the order of mm on the 1 hour time scale, consistent with rapid dehydration of ACC nano-particles in the laboratory. We correlate our fast waters with the water molecules in the percolating water-rich, Ca2+-deficient nano-pores in the structure of Goodwin et al. [Chem. Mater., 2010, 22, 3197], obtained by analysis of X-ray scattering data, and our slow waters with those in the Ca2+-rich volumes with less water in their model. The fast waters can be considered to be free rotors on the ns time scale and have orders of magnitude shorter rotational relaxation times than the slow waters.
机译:无定形碳酸钙(ACC)通常是CaCo3的结晶相通过水合acc的晶相的临界瞬态阶段。水分子的行为在这种转变中起着枢轴作用。我们在此报告使用分子动力学(MD)模拟的CaCO3中心点1H(2)O至Caco3中心点0.25h(2)o的水合水平的水分子的动态。由于存在高亲水性Ca2 +和强的H键受体CO32-,我们模拟中的大多数水分子具有限制性和定位动态。这些在此称为“慢水”。然而,它们的一小部分在所有水合态显示出高扩散率,并且此处称为“快水”。慢水的计算扩散系数,如从模拟结果的外推,在1小时时间尺度上产生mm的顺序的扩散距离,与实验室中的Acc纳米颗粒的快速脱水一致。我们在Goodwin等人的结构中将我们的快水与水分子与水分子相关联。 [化学。 Mater。,2010,22,3197],通过分析X射线散射数据,以及我们模型中减少水分的CA2 + -RICH体积的慢水。快速的水可以被认为是NS时间尺度上的自由转子,并且比慢水从慢水位更短的旋转松弛时间。

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