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Critical length limiting superlow friction

Academic Article
Publication Date:
2015
abstract:
Since the demonstration of superlow friction (superlubricity) in graphite at nanoscale, one of the main challenges in the field of nano- and micromechanics was to scale this phenomenon up. A key question to be addressed is to what extent superlubricity could persist, and what mechanisms could lead to its failure. Here, using an edge-driven Frenkel-Kontorova model, we establish a connection between the critical length above which superlubricity disappears and both intrinsic material properties and experimental parameters. A striking boost in dissipated energy with chain length emerges abruptly due to a high-friction stick-slip mechanism caused by deformation of the slider leading to a local commensuration with the substrate lattice. We derived a parameter-free analytical model for the critical length that is in excellent agreement with our numerical simulations. Our results provide a new perspective on friction and nanomanipulation and can serve as a theoretical basis for designing nanodevices with superlow friction, such as carbon nanotubes.
Iris type:
01.01 Articolo in rivista
Keywords:
Critical Length Limiting Superlow Friction
List of contributors:
Vanossi, Andrea
Authors of the University:
VANOSSI ANDREA
Handle:
https://iris.cnr.it/handle/20.500.14243/313860
Published in:
PHYSICAL REVIEW LETTERS
Journal
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