Dong Yun, Hui Weibin, Rui Zhiyuan, Ding Yusong, Lian Fangming, Tao Yi
School of Mechanical and Electrical Engineering, Lanzhou University of Technology, Lanzhou, 730050, China.
Institute of Nanomaterials Application Technology, Gansu Academy of Sciences, Lanzhou, 730000, China.
Nanoscale. 2023 Sep 1;15(34):14122-14130. doi: 10.1039/d3nr01867a.
Based on a combination of molecular dynamics simulations and quantum theories, this study discloses the phonon mechanism of angle-dependent superlubricity between black phosphorus layers. Friction exhibits 180° periodicity, , the highest friction at 0° and 180° and lowest at 90°. Thermal excitation reduces friction at 0° due to thermal lubrication. However, at 90°, high temperature increases friction caused by thermal collision owing to lower interfacial constraints. Phonon spectra reveal that with 0°, energy dissipation channels can be formed at the interface, thus enhancing dissipation efficiency, while the energy dissipation channels are destroyed, thus hindering frictional dissipation at 90°. Besides, for both commensurate and incommensurate cases, more phonons are excited on atoms adjacent to the contact interface than those excited from nonadjacent interface atoms.
基于分子动力学模拟和量子理论的结合,本研究揭示了黑磷层间角度相关超润滑性的声子机制。摩擦力呈现180°周期性,在0°和180°时摩擦力最高,在90°时最低。由于热润滑,热激发降低了0°时的摩擦力。然而,在90°时,由于界面约束较低,高温增加了热碰撞引起的摩擦力。声子谱表明,在0°时,界面处可形成能量耗散通道,从而提高耗散效率,而在90°时,能量耗散通道被破坏,从而阻碍摩擦耗散。此外,对于共格和非共格情况,与非相邻界面原子相比,接触界面附近原子上激发的声子更多。