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Molecular origins of fluorocarbon hydrophobicity

机译:碳氟化合物疏水性的分子起源

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摘要

We have undertaken atomistic molecular simulations to systematically determine the structural contributions to the hydrophobicity of fluorinated solutes and surfaces compared to the corresponding hydrocarbon, yielding a unified explanation for these phenomena. We have transformed a short chain alkane, n-octane, to n-perfluor-ooctane in stages. The free-energy changes and the entropic components calculated for each transformation stage yield considerable insight into the relevant physics. To evaluate the effect of a surface, we have also conducted contact-angle simulations of water on self-assembled monolayers of hydrocarbon and fluorocarbon thiols. Our results, which are consistent with experimental observations, indicate that the hydrophobicity of the fluorocarbon, whether the interaction with water is as solute or as surface, is due to its "fatness." In solution, the extra work of cavity formation to accommodate a fluorocarbon, compared to a hydrocarbon, is not offset by enhanced energetic interactions with water. The enhanced hydrophobicity of fluorinated surfaces arises because fluorocarbons pack less densely on surfaces leading to poorer van der Waals interactions with water. We find that interaction of water with a hydrophobic solute/surface is primarily a function of van der Waals interactions and is substantially independent of electrostatic interactions. This independence is primarily due to the strong tendency of water at room temperature to maintain its hydrogen bonding network structure at an interface lacking hydro-philic sites.
机译:我们进行了原子分子模拟,系统地确定了与相应的烃相比,氟化物和表面疏水性的结构贡献,从而为这些现象提供了统一的解释。我们已将短链烷烃正辛烷逐步转化为正全氟辛烷。对于每个转换阶段计算出的自由能变化和熵分量,可以使人们对相关物理学有相当深入的了解。为了评估表面的影响,我们还对水在烃和碳氟化合物硫醇的自组装单层上进行了接触角模拟。我们的结果与实验观察结果一致,表明碳氟化合物的疏水性,无论与水的相互作用是溶质还是表面,都是由于其“脂肪”。在溶液中,与碳氢化合物相比,腔体形成以容纳碳氟化合物的额外功不能被增强的与水的能量相互作用所抵消。氟化表面的疏水性增强是因为碳氟化合物在表面上堆积的密度较小,导致与水的范德华相互作用较差。我们发现水与疏水性溶质/表面的相互作用主要是范德华相互作用的函数,并且基本上与静电相互作用无关。这种独立性主要是由于室温下水在缺乏亲水位点的界面上保持氢键网络结构的强烈趋势。

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  • 作者单位

    Departments of Chemical Engineering and Sciences, University of Texas, Austin, TX 78712;

    rnDepartments of Chemical Engineering and Sciences, University of Texas, Austin, TX 78712 Chemistry and Biochemistry and Institute for Computational Engineering and Sciences, University of Texas, Austin, TX 78712;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    solubility; hydration; wetting;

    机译:溶解度保湿湿润的;
  • 入库时间 2022-08-18 00:41:22

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