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晶格分辨摩擦中滑动接触处捕获分子的作用。

Role of Trapped Molecules at Sliding Contacts in Lattice-Resolved Friction.

作者信息

Dašić Miljan, Almog Roy, Agmon Liron, Yehezkel Stav, Halfin Tal, Jopp Jürgen, Ya'akobovitz Assaf, Berkovich Ronen, Stanković Igor

机构信息

Scientific Computing Laboratory, Center for the Study of Complex Systems, Institute of Physics Belgrade, University of Belgrade, Pregrevica 118, Belgrade 11080, Serbia.

Department of Chemical Engineering, Ben-Gurion University of the Negev, Beer Sheva Blvd 1, Beer Sheva 84105, Israel.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 21;16(33):44249-44260. doi: 10.1021/acsami.4c08226. Epub 2024 Aug 6.

Abstract

Understanding atomic friction within a liquid environment is crucial for engineering friction mechanisms and characterizing surfaces. It has been suggested that the lattice resolution of friction force microscope in liquid environments stems from a dry contact state, with all liquid molecules expelled from the area of closest approach between the tip and substrate. Here, we revisit this assertion by performing in-depth friction force microscopy experiments and molecular dynamics simulations of the influence of surrounding water molecules on the dynamic behavior of the nanotribological contact between an amorphous SiO probe and a monolayer MoS substrate. An analysis of simulation and experimental stick-slip patterns demonstrates the entrapment of water molecules at the contact interface. These trapped water molecules behave as an integral component of the probe and participate in its interaction with the substrate, affecting the dynamics of the probe and preventing long slips. Significantly, surrounding water from the capillary or layer exhibits a replenishing effect, acting as a water reservoir during sliding. This phenomenon facilitates the preservation of lattice-scale resolution across a range of applied normal loads.

摘要

了解液体环境中的原子摩擦对于设计摩擦机制和表征表面至关重要。有人提出,液体环境中摩擦力显微镜的晶格分辨率源于干接触状态,所有液体分子都从探针与基底最接近区域被排挤出去。在此,我们通过对非晶态SiO探针与单层MoS基底之间纳米摩擦接触的动态行为进行深入的摩擦力显微镜实验和分子动力学模拟,重新审视这一论断。对模拟和实验的粘滑模式分析表明,水分子被困在接触界面处。这些被困的水分子作为探针的一个组成部分,参与其与基底的相互作用,影响探针的动力学并防止长距离滑动。值得注意的是,来自毛细管或层的周围水表现出补充作用,在滑动过程中充当水库。这种现象有助于在一系列施加的法向载荷范围内保持晶格尺度的分辨率。

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