Cimas Álvaro, Tielens Frederik, Sulpizi Marialore, Gaigeot Marie-Pierre, Costa Dominique
Laboratoire Analyse et Modélisation pour la Biologie et l'Environnement, LAMBE UMR CNRS 8587, Université d'Evry val d'Essonne, Blvd F Mitterrand, Bat. Maupertuis, 91025 Evry, France.
J Phys Condens Matter. 2014 Jun 18;26(24):244106. doi: 10.1088/0953-8984/26/24/244106. Epub 2014 May 27.
The structural organization of water at a model of amorphous silica-liquid water interface is investigated by ab initio molecular dynamics (AIMD) simulations at room temperature. The amorphous surface is constructed with isolated, H-bonded vicinal and geminal silanols. In the absence of water, the silanols have orientations that depend on the local surface topology (i.e. presence of concave and convex zones). However, in the presence of liquid water, only the strong inter-silanol H-bonds are maintained, whereas the weaker ones are replaced by H-bonds formed with interfacial water molecules. All silanols are found to act as H-bond donors to water. The vicinal silanols are simultaneously found to be H-bond acceptors from water. The geminal pairs are also characterized by the formation of water H-bonded rings, which could provide special pathways for proton transfer(s) at the interface. The first water layer above the surface is overall rather disordered, with three main domains of orientations of the water molecules. We discuss the similarities and differences in the structural organization of the interfacial water layer at the surface of the amorphous silica and at the surface of the crystalline (0 0 0 1) quartz surface.
通过室温下的从头算分子动力学(AIMD)模拟研究了非晶硅 - 液态水界面模型处水的结构组织。非晶表面由孤立的、通过氢键连接的邻位和孪位硅醇构建而成。在无水情况下,硅醇的取向取决于局部表面拓扑结构(即凹凸区域的存在)。然而,在存在液态水的情况下,仅保留了硅醇之间较强的氢键,而较弱的氢键则被与界面水分子形成的氢键所取代。发现所有硅醇都作为水的氢键供体。同时发现邻位硅醇也是水的氢键受体。孪位对还以形成水氢键环为特征,这可能为界面处的质子转移提供特殊途径。表面上方的第一层水总体上相当无序,水分子有三个主要的取向域。我们讨论了非晶硅表面和晶体(0 0 0 1)石英表面界面水层结构组织的异同。