Sun Qiang, Chen Yan-Nan, Liu Yu-Zhen
Key Laboratory of Orogenic Belts and Crustal Evolution, Ministry of Education, The School of Earth and Space Sciences, Peking University, Beijing 100871, China.
Molecules. 2024 Jul 1;29(13):3128. doi: 10.3390/molecules29133128.
External interfaces, such as the air-water and solid-liquid interfaces, are ubiquitous in nature. Hydrophobic interactions are considered the fundamental driving force in many physical and chemical processes occurring in aqueous solutions. It is important to understand the effects of external interfaces on hydrophobic interactions. According to the structural studies on liquid water and the air-water interface, the external interface primarily affects the structure of the topmost water layer (interfacial water). Therefore, an external interface may affect hydrophobic interactions. The effects of interfaces on hydrophobicity are related not only to surface molecular polarity but also to the geometric characteristics of the external interface, such as shape and surface roughness. This study is devoted to understanding the effects of a smooth interface on hydrophobicity. Due to hydrophobic interactions, the solutes tend to accumulate at external interfaces to maximize the hydrogen bonding of water. Additionally, these can be demonstrated by the calculated potential mean forces (PMFs) using molecular dynamic (MD) simulations.
外部界面,如气-水界面和固-液界面,在自然界中无处不在。疏水相互作用被认为是水溶液中许多物理和化学过程的基本驱动力。了解外部界面对疏水相互作用的影响很重要。根据对液态水和气-水界面的结构研究,外部界面主要影响最顶层水层(界面水)的结构。因此,外部界面可能会影响疏水相互作用。界面对疏水性的影响不仅与表面分子极性有关,还与外部界面的几何特征有关,如形状和表面粗糙度。本研究致力于了解光滑界面对疏水性的影响。由于疏水相互作用,溶质倾向于在外部界面处聚集,以使水的氢键最大化。此外,这些可以通过使用分子动力学(MD)模拟计算的势能平均力(PMF)来证明。