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Molecular Dynamics Simulation Study for Hydroxide Ion in Supercritical Water using SPC/E Water Potential

机译:使用SPC / E水势的超临界水中氢氧根离子的分子动力学模拟研究

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摘要

We present results of molecular dynamics simulations for hydroxide ion in supercritical water of densities 0.22, 0.31, 0.40, 0.48, 0.61, and 0.74 g/cc using the SPC/E water potential with Ewald summation. The limiting molar conductance of OH" ion at 673 K monotonically increases with decreasing water density. It is also found that the hydration number of water molecules in the first hydration shells around the OH~- ion decreases and the potential energy per hydrated water molecule also decreases in the whole water density region with decreasing water density. Unlike the case in our previous works on LiCl, NaCl, NaBr, and CsBr [Lee at al., Chem. Phys. Lett. 1998, 293, 289-294 and J. Chem. Phys. 2000, 112, 864-869], the number of hydrated water molecules around ions and the potential energy per hydrated water molecule give the same effect to cause a monotonically increasing of the diffusion coefficient with decreasing water density in the whole water density region. The decreasing residence times are consistent with the decreasing potential energy per hydrated water molecule.
机译:我们使用Ewald求和的SPC / E水势,给出了密度为0.22、0.31、0.40、0.48、0.61和0.74 g / cc的超临界水中氢氧根离子的分子动力学模拟结果。随着水密度的降低,OH“离子在673 K处的极限摩尔电导率单调增加。还发现OH〜-离子周围第一水化壳中水分子的水合数减少,每个水合水分子的势能也降低。整个水密度区域的水含量随水密度的降低而降低,这与我们先前关于LiCl,NaCl,NaBr和CsBr的研究不同[Lee等人,Chem。Phys。Lett。1998,293,289-294 and J. Chem。Phys。2000,112,864-869],离子周围的水合水分子数和每个水合水分子的势能具有相同的作用,导致扩散系数随着水在整个水中的密度降低而单调增加。停留时间的减少与每个水合水分子势能的减少是一致的。

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