Does Rotational Melting Make Molecular Crystal Surfaces More Slippery?
Abstract
The surface of a crystal made of roughly spherical molecules exposes, above its bulk rotational phase transition at T= T, a carpet of freely rotating molecules, possibly functioning as "nanobearings" in sliding friction. We explored by extensive molecular dynamics simulations the frictional and adhesion changes experienced by a sliding C flake on the surface of the prototype system C fullerite. At fixed flake orientation both quantities exhibit only a modest frictional drop of order 20% across the transition. However, adhesion and friction drop by a factor of 2 as the flake breaks its perfect angular alignment with the C surface lattice suggesting an entropy-driven aligned-misaligned switch during pull-off at T. The results can be of relevance for sliding Kr islands, where very little frictional differences were observed at T, but also to the sliding of C -coated tip, where a remarkable factor 2 drop has been reported.
Cite
@article{arxiv.1410.2821,
title = {Does Rotational Melting Make Molecular Crystal Surfaces More Slippery?},
author = {Andrea Benassi and Andrea Vanossi and Carlo A. Pignedoli and Daniele Passerone and Erio Tosatti},
journal= {arXiv preprint arXiv:1410.2821},
year = {2015}
}