首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Structure and vibrational spectroscopy of salt water/air interfaces: Predictions from classical molecular dynamics simulations
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Structure and vibrational spectroscopy of salt water/air interfaces: Predictions from classical molecular dynamics simulations

机译:盐水/空气界面的结构和振动光谱:经典分子动力学模拟的预测

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We report the sum frequency generation (SFG) spectra of aqueous sodium iodide interfaces computed with the methodology outlined by Morita and Hynes (J. Phys. Chem. B 2002, 106, 673), which is based on molecular dynamics simulations. The calculated spectra are in qualitative agreement with experiment. Our simulations show that the addition of sodium iodide to water leads to an increase in SFG intensity in the region of 3400 cm(-1), which is correlated with an increase in ordering of hydrogen-bonded water molecules. Depth-resolved orientational distribution functions suggest that the ion double layer orders water molecules that are approximately one water layer below the Gibbs dividing surface. We attribute the increase in SFG intensity to these ordered subsurface water molecules that are present in the aqueous sodium iodide/air interfaces but are absent in the neat water/air interface.
机译:我们报告了使用Morita和Hynes(J. Phys。Chem。B 2002,106,673)概述的方法计算的碘化钠水溶液界面的总频率生成(SFG)光谱,该光谱基于分子动力学模拟。计算得到的光谱与实验定性一致。我们的模拟结果表明,向水中添加碘化钠会导致3400 cm(-1)区域的SFG强度增加,这与氢键水分子的有序增加有关。深度解析的定向分布函数表明,离子双层对水分子的排序大约为Gibbs划分表面以下一层水层。我们将SFG强度的增加归因于这些有序的地下水分子,这些分子存在于碘化钠水溶液/空气界面中,但在纯净的水/空气界面中却不存在。

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