吸附共溶物与疏水合壳的相互作用

Swaminath Bharadwaj, Madhusmita Tripathy, Nico F. A. van der Vegt
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摘要

通过分析非极性溶质水合外壳中的水密度波动,可以深入了解水介导的相互作用,尤其是疏水相互作用。这些波动不仅对温度和压力等热力学条件变化引起的微小扰动敏感,而且对盐或小有机分子等共溶质的存在也很敏感。在此,我们以尿素和甲醇为代表,研究了两类吸附共溶物对模型扩展疏水溶质溶壳内能量和溶剂密度波动的影响。我们的研究重点是共溶质与疏水合壳的相互作用,而不是与溶质本身的相互作用。我们采用基于小系统法的方法计算并分析了共溶质的界面部分摩尔能。这种方法提供了相关的溶剂密度和能量波动,并允许我们将其分解为溶质溶壳中不同成分之间相互作用的贡献。结果表明,与未吸附的尿素分子相比,吸附的尿素分子与水的相互作用更为有利,这导致了界面密度波动的衰减,从而稳定了溶质外壳。相比之下,吸附的甲醇分子更容易与溶壳中的其他甲醇分子相互作用,形成纳米相分离结构,从而增强了界面波动。
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Interactions of adsorbing cosolutes with hydrophobic hydration shells
The analysis of water density fluctuations in the hydration shell of nonpolar solutes provides insights into water-mediated interactions, especially hydrophobic interactions. These fluctuations are sensitive to small perturbations due to changes in thermodynamic conditions, such as temperature and pressure, but also to the presence of cosolutes, such as salts or small organic molecules. Herein, we investigate the effect of two classes of adsorbing cosolutes, using urea and methanol as representatives, on the fluctuations in energy and solvent density within the solvation shell of a model extended hydrophobic solute. We focus on the interactions of the cosolutes with the hydrophobic hydration shell, rather than with the solute itself, which though important remain largely unexplored. We calculate and analyze the interfacial partial molar energy of the cosolute, using a methodology based on the small system method. This approach provides correlated solvent density and energy fluctuations and allows us to decompose them into contributions due to interactions between the different components present in the solvation shell of the solute. The results show that adsorbed urea molecules interact more favorably with water than nonadsorbed urea molecules, which leads to the attenuation of interfacial density fluctuations and thus to the stabilization of the solvation shell. By contrast, the adsorbed methanol molecules interact preferably with other methanol molecules in the solvation shell, leading to a nano-phase segregated structure, which enhances interfacial fluctuations.
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