Atomic stick-slip friction as a two-dimensional thermally activated process
- authored by
- Quanzhou Yao, Jiawei Sun, Xiaoying Zhuang, Peter Wriggers, Xi Qiao Feng, Qunyang Li
- Abstract
Widely recognized as a thermally activated process, atomic stick-slip friction has been typically explained by Prandtl-Tomlinson model with thermal activation. Despite the limited success, theoretical predictions from the classic model are primarily based on a one-dimensional (1D) assumption, which is generally not compatible with real experiments that are two-dimensional (2D) in nature. In this letter, a theoretical model based on 2D transition state theory has been derived and confirmed to be able to capture the 2D slip kinetics in atomic-scale friction experiments on crystalline surface with a hexagonal energy landscape. Moreover, we propose a reduced scheme that enables extraction of intrinsic interfacial parameters from 2D experiments approximately using the traditional 1D model. The 2D model provides a theoretical tool for understanding the rich kinetics of atomic-scale friction or other phenomena involving higher dimensional transitions.
- Organisation(s)
-
Institute of Photonics
Institute of Continuum Mechanics
- External Organisation(s)
-
Tsinghua University
- Type
- Article
- Journal
- Physical Review B
- Volume
- 105
- ISSN
- 2469-9950
- Publication date
- 25.04.2022
- Publication status
- Published
- Peer reviewed
- Yes
- ASJC Scopus subject areas
- Electronic, Optical and Magnetic Materials, Condensed Matter Physics
- Electronic version(s)
-
https://doi.org/10.1103/PhysRevB.105.165429 (Access:
Closed)
-
Details in the research portal "Research@Leibniz University"