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Molecular dynamics simulations of structural transformation of perfluorooctane sulfonate (PFOS) at water/rutile interfaces

机译:水/金红石界面全氟辛烷磺酸盐(PFOS)结构转变的分子动力学模拟

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摘要

Concentration and salinity conditions are the dominant environmental factors affecting the behavior of perfluorinated compounds (PFCs) on the surfaces of a variety of solid matrices (suspended particles, sediments, and natural minerals). However, the mechanism has not yet been examined at molecular scales. Here, the structural transformation of perfluorooctane sulfonate (PFOS) at water/rutile interfaces induced by changes of the concentration level of PFOS and salt condition was investigated using molecular dynamics (MD) simulations. At low and intermediate concentrations all PFOS molecules directly interacted with the rutile (110) surface mainly by the sulfonate headgroups through electrostatic attraction, yielding a typical monolayer structure. As the concentration of PFOS increased, the molecules aggregated in a complex multi-layered structure, where an irregular assembling configuration was adsorbed on the monolayer structure by the van der Waals interactions between the perfluoroalkyl chains. When adding CaCl2 to the system, the multi-layered structure changed to a monolayer again, indicating that the addition of CaCl2 enhanced the critical concentration value to yield PFOS multilayer assemblies. The divalent Ca2+ substituted for monovalent K+ as the bridging counterion in PFOS adsorption. MD simulation may trigger wide applications in study of perfluorinated compounds (PFCs) from atomic/molecular scale. (C) 2015 Elsevier Ltd. All rights reserved.
机译:浓度和盐度条件是影响各种固体基质(悬浮颗粒,沉积物和天然矿物质)表面全氟化合物(PFC)行为的主要环境因素。但是,该机制尚未在分子尺度上进行研究。在此,使用分子动力学(MD)模拟研究了全氟辛烷磺酸盐(PFOS)在水/金红石界面处的结构转变,该结构转变是由PFOS浓度水平和盐条件的变化引起的。在低和中浓度下,所有PFOS分子主要通过磺酸吸引基团通过静电吸引直接与金红石(110)表面相互作用,从而产生典型的单层结构。随着PFOS浓度的增加,分子聚集在复杂的多层结构中,其中不规则的组装结构通过全氟烷基链之间的范德华相互作用吸附在单层结构上。当向系统中添加CaCl2时,多层结构再次变为单层,表明CaCl2的添加提高了临界浓度值,从而产生了PFOS多层组件。在PFOS吸附中,二价Ca2 +取代了一价K +作为桥联抗衡离子。 MD模拟可能会在原子/分子规模的全氟化合物(PFC)研究中引发广泛的应用。 (C)2015 Elsevier Ltd.保留所有权利。

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