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基于经典点电荷模型的电化学表面电位驱动阴离子吸附至气-水界面。

Electrochemical Surface Potential Due to Classical Point Charge Models Drives Anion Adsorption to the Air-Water Interface.

作者信息

Baer Marcel D, Stern Abraham C, Levin Yan, Tobias Douglas J, Mundy Christopher J

机构信息

†Chemical and Materials Science Division, Pacific Northwest National Laboratory, Richland 99352, Washington.

‡Department of Chemistry, University of California, Irvine, Irvine, California 92697-2025, United States.

出版信息

J Phys Chem Lett. 2012 Jun 7;3(11):1565-70. doi: 10.1021/jz300302t. Epub 2012 May 29.

Abstract

We demonstrate that the driving forces for ion adsorption to the air-water interface for point charge models result from both cavitation and a term that is of the form of a negative electrochemical surface potential. We carefully characterize the role of the free energy due to the electrochemical surface potential computed from simple empirical models and its role in ionic adsorption within the context of dielectric continuum theory. Our research suggests that the electrochemical surface potential due to point charge models provides anions with a significant driving force for adsoprtion to the air-water interface. This is contrary to the results of ab initio simulations that indicate that the average electrostatic surface potential should favor the desorption of anions at the air-water interface. The results have profound implications for the studies of ionic distributions in the vicinity of hydrophobic surfaces and proteins.

摘要

我们证明,对于点电荷模型,离子吸附到空气 - 水界面的驱动力源于空化作用以及一个呈负电化学表面势形式的项。我们仔细描述了由简单经验模型计算出的电化学表面势所导致的自由能的作用,及其在介电连续介质理论背景下在离子吸附中的作用。我们的研究表明,点电荷模型产生的电化学表面势为阴离子提供了吸附到空气 - 水界面的显著驱动力。这与从头算模拟的结果相反,从头算模拟表明平均静电表面势应有利于阴离子在空气 - 水界面的解吸。这些结果对疏水表面和蛋白质附近离子分布的研究具有深远意义。

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