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Superlubric polycrystalline graphene interfaces
PhysicsNature Communications

Superlubric polycrystalline graphene interfaces

X. Gao, W. Ouyang, et al.

This research by Xiang Gao, Wengen Ouyang, Michael Urbakh, and Oded Hod delves into the fascinating frictional behavior of graphitic contacts with polycrystalline surfaces, uncovering a surprising non-linear relationship between friction, normal load, and temperature. Using a novel two-state model, it offers insights that could potentially enable superlubricity at larger scales.... show more
Abstract
The effects of corrugated grain boundaries on the frictional properties of extended planar graphitic contacts incorporating a polycrystalline surface are investigated via molecular dynamics simulations. The kinetic friction is found to be dominated by shear induced buckling and unbuckling of corrugated grain boundary dislocations, leading to a nonmonotonic behavior of the friction with normal load and temperature. The underlying mechanism involves two effects, where an increase of dislocation buckling probability competes with a decrease of the dissipated energy per buckling event. These effects are well captured by a phenomenological two-state model, that allows for characterizing the tribological properties of any large-scale polycrystalline layered interface, while circumventing the need for demanding atomistic simulations. The resulting negative differential friction coefficients obtained in the high-load regime can reduce the expected linear scaling of grain-boundary friction with surface area and restore structural superlubricity at increasing length-scales.
Publisher
Nature Communications
Published On
Sep 28, 2021
Authors
Xiang Gao, Wengen Ouyang, Michael Urbakh, Oded Hod
Tags
frictionmolecular dynamicsgraphitic contactspolycrystalline surfacestribological propertiesshear-induced bucklingsuperlubricity
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