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Molecular Dynamics Simulation of Atomic Force Microscopy at the Water-Muscovite Interface: Hydration Layer Structure and Force Analysis

机译:水-白云母界面原子力显微镜的分子动力学模拟:水化层结构和力分析

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With the development of atomic force microscopy (AFM), it is now possible to detect the buried liquid-solid interfacial structure in three dimensions at the atomic scale. One of the model surfaces used for AFM is the muscovite surface because it is atomically flat after cleavage along the basal plane. Although it is considered that force profiles obtained by AFM reflect the interfacial structures (e.g., muscovite surface and water structure), the force profiles are not straightforward because of the lack of a quantitative relationship between the force and the interfacial structure. In the present study, molecular dynamics simulations were performed to investigate the relationship between the muscovite water interfacial structure and the measured AFM force using a capped carbon nanotube (CNT) AFM tip. We provide divided force profiles, where the force contributions from each water layer at the interface are shown. They reveal that the first hydration layer is dominant in the total force from water even after destruction of the layer. Moreover, the lateral structure of the first hydration layer transcribes the muscovite surface structure. It resembles the experimentally resolved surface structure of muscovite in previous AFM studies. The local density profile of water between the tip and the surface provides further insight into the relationship between the water structure and the detected force structure. The detected force structure reflects the basic features of the atomic structure for the local hydration layers. However, details including the peak-peak distance in the force profile (force-distance curve) differ from those in the density profile (density-distance curve) because of disturbance by the tip.
机译:随着原子力显微镜(AFM)的发展,现在有可能在原子尺度上三维地检测掩埋的液固界面结构。用于AFM的模型表面之一是白云母表面,因为它在沿基面劈开后在原子上是平坦的。尽管认为通过AFM获得的力分布反映了界面结构(例如白云母表面和水结构),但是由于在力和界面结构之间缺乏定量关系,因此该力分布不是直接的。在本研究中,进行了分子动力学模拟,以研究白云母水界面结构与使用封端的碳纳米管(CNT)AFM尖端测得的AFM力之间的关系。我们提供了分开的力分布图,其中显示了界面上每个水层的力贡献。他们发现,即使在破坏第一层水合层后,其在水的总作用力中仍占主导地位。此外,第一水合层的横向结构转录白云母的表面结构。它类似于先前原子力显微镜研究中实验确定的白云母表面结构。尖端与表面之间的水局部密度分布图可进一步了解水结构与检测到的力结构之间的关系。检测到的力结构反映了局部水合层的原子结构的基本特征。但是,由于尖端的干扰,在力分布图(力-距离曲线)中包括峰-峰距离的细节与密度分布图(密度-距离曲线)中的细节不同。

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