石墨烯
材料科学
超晶格
云纹
纳米技术
变形(气象学)
化学物理
润滑
分子动力学
基质(水族馆)
光电子学
复合材料
化学
光学
计算化学
地质学
物理
海洋学
作者
Xiaohu Zheng,Lei Gao,Quanzhou Yao,Qunyang Li,Miao Zhang,Xiaoming Xie,Shan Qiao,Gang Wang,Tianbao Ma,Zengfeng Di,Jianbin Luo,Xi Wang
摘要
Abstract Two-dimensional (2D) materials possess outstanding lubrication property with their thicknesses down to a few atomic layers, but they are easily susceptible to sliding induced degradation or ubiquitous chemical modification. Maintaining the superior lubricating performance of 2D materials in a harsh working environment is highly desirable yet grandly challenging. Here we show that by proper alignment of graphene on a Ge(111) substrate, friction of graphene could be well preserved at an ultra-low level even after fluorination or oxidation. This behaviour is experimentally found to be closely related to the suppression of molecular-level deformation of graphene within the moiré superlattice structure. Atomistic simulations reveal that the formation of an interconnected meshwork with enhanced interfacial charge density imposes a strong anchoring effect on graphene even under chemical modification. Modulating molecular-level deformation by interfacial confinements may offer a unique strategy for tuning the mechanical or even chemical properties of 2D materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI