Issue 5, 2019

Robust superlubricity by strain engineering

Abstract

Structural superlubricity, a nearly frictionless state between two contact solid surfaces, has attracted rapidly increasing attention during the past few years. Yet a key problem that limits its promising applications is the high anisotropy of friction which always leads to its failure. Here we study the friction of a graphene flake sliding on top of a graphene substrate using molecular dynamics simulation. The results show that by applying strain on the substrate, biaxial stretching is better than uniaxial stretching in terms of reducing interlayer friction. Importantly, we find that robust superlubricity can be achieved via both biaxial and uniaxial stretching, namely for stretching above a critical strain which has been achieved experimentally, the friction is no longer dependent on the relative orientation mainly due to the complete lattice mismatch. The underlying mechanism is revealed to be the Moiré pattern formed. These findings provide a viable approach for the realization of robust superlubricity through strain engineering.

Graphical abstract: Robust superlubricity by strain engineering

Supplementary files

Article information

Article type
Paper
Submitted
30 Sept. 2018
Accepted
06 Janv. 2019
First published
07 Janv. 2019

Nanoscale, 2019,11, 2186-2193

Robust superlubricity by strain engineering

K. Wang, W. Ouyang, W. Cao, M. Ma and Q. Zheng, Nanoscale, 2019, 11, 2186 DOI: 10.1039/C8NR07963C

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