Harrach Michael F, Drossel Barbara
Institut für Festkörperphysik, Technische Universität Darmstadt, Hochschulstr. 6, 64289 Darmstadt, Germany.
J Chem Phys. 2014 May 7;140(17):174501. doi: 10.1063/1.4872239.
We perform molecular dynamics simulations to observe the structure and dynamics of water using different water models (TIP3P, TIP4P, TIP5P) at ambient conditions, constrained by planar walls, which are either modeled by smooth potentials or regular atomic lattices, imitating the honeycomb-structure of graphene. We implement walls of different hydroaffinity, different lattice constant, and different types of interaction with the water molecules. We find that in the hydrophobic regime the smooth wall generally represents a good abstraction of the atomically rough walls, while in the hydrophilic regime there are noticeable differences in structure and dynamics between all stages of wall roughness. For a small lattice constant however the smooth and the atomically rough wall still share a number of structural and dynamical similarities. Out of the three water models, TIP5P water shows the largest degree of tetrahedral ordering and is often the one that is least perturbed by the presence of the wall.
我们进行分子动力学模拟,以观察在环境条件下使用不同水模型(TIP3P、TIP4P、TIP5P)的水的结构和动力学,这些水受平面壁的约束,平面壁由光滑势或规则原子晶格建模,模仿石墨烯的蜂窝结构。我们实现了具有不同亲水性、不同晶格常数以及与水分子不同相互作用类型的壁。我们发现,在疏水状态下,光滑壁通常能很好地抽象出原子粗糙壁,而在亲水状态下,壁粗糙度的所有阶段在结构和动力学上都存在明显差异。然而,对于较小的晶格常数,光滑壁和原子粗糙壁在结构和动力学上仍有一些相似之处。在这三种水模型中,TIP5P水显示出最大程度的四面体有序性,并且通常是受壁的存在干扰最小的一种。