Miyazawa Keisuke, Kobayashi Naritaka, Watkins Matthew, Shluger Alexander L, Amano Ken-ichi, Fukuma Takeshi
Division of Electrical Engineering and Computer Science, Kanazawa University, Kakuma-machi, Kanazawa 920-1192, Japan.
School of Mathematics and Physics, University of Lincoln, Brayford Pool, Lincoln LN6 7TS, UK.
Nanoscale. 2016 Apr 7;8(13):7334-42. doi: 10.1039/c5nr08092d.
Hydration plays important roles in various solid-liquid interfacial phenomena. Very recently, three-dimensional scanning force microscopy (3D-SFM) has been proposed as a tool to visualise solvated surfaces and their hydration structures with lateral and vertical (sub) molecular resolution. However, the relationship between the 3D force map obtained and the equilibrium water density, ρ(r), distribution above the surface remains an open question. Here, we investigate this relationship at an interface of an inorganic mineral, fluorite, and water. The force maps measured in pure water are directly compared to force maps generated using the solvent tip approximation (STA) model and from explicit molecular dynamics simulations. The results show that the simulated STA force map describes the major features of the experimentally obtained force image. The agreement between the STA data and the experiment establishes the correspondence between the water density used as an input to the STA model and the experimental hydration structure and thus provides a tool to bridge the experimental force data and atomistic solvation structures. Further applications of this method should improve the accuracy and reliability of both interpretation of 3D-SFM force maps and atomistic simulations in a wide range of solid-liquid interfacial phenomena.
水合作用在各种固 - 液界面现象中起着重要作用。最近,三维扫描力显微镜(3D - SFM)已被提议作为一种工具,用于以横向和垂直(亚)分子分辨率可视化溶剂化表面及其水合结构。然而,所获得的三维力图谱与表面上方平衡水密度ρ(r)分布之间的关系仍然是一个悬而未决的问题。在此,我们研究无机矿物萤石与水界面处的这种关系。将在纯水中测量的力图谱直接与使用溶剂尖端近似(STA)模型生成的力图谱以及显式分子动力学模拟得到的力图谱进行比较。结果表明,模拟的STA力图谱描述了实验获得的力图像的主要特征。STA数据与实验之间的一致性确立了作为STA模型输入的水密度与实验水合结构之间的对应关系,从而提供了一种将实验力数据与原子溶剂化结构联系起来的工具。该方法的进一步应用应能提高在广泛的固 - 液界面现象中对3D - SFM力图谱的解释以及原子模拟的准确性和可靠性。