Sliding Over a Phase Transition
arXiv:1105.4806 · doi:10.1103/PhysRevLett.106.256102
Abstract
The effects of a displacive structural phase transition on sliding friction are in principle accessible to nanoscale tools such as the Atomic Force Microscopy, yet they are still surprisingly unexplored. We present model simulations demonstrating and clarifying the mechanism and potential impact of these effects. A structural order parameter inside the material will yield a contribution to stick-slip friction that is nonmonotonic as temperature crosses the phase transition, peaking at the critical Tc where critical fluctuations are strongest, and the sliding-induced order parameter local flips from one value to another more numerous. Accordingly, the friction below Tc is larger when the order parameter orientation is such that flips are more effectively triggered by the slider. The observability of these effects and their use for friction control are discussed, for future application to sliding on the surface of and ferro- or antiferro-distortive materials.
Accepted on PRL
References in corpus (1)
Cited by in corpus (9)
- Modeling friction: From nanoscale to mesoscale
- Noncontact dissipation reveals critical central peak in SrTiO3
- Stick-Slip Nanofriction in Trapped Cold Ion Chains
- Dynamics of mobile interacting ferromagnetic films: theory and numerical implementation
- Friction Anomalies at First-Order Transition Spinodals: 1T-TaS
- Does Rotational Melting Make Molecular Crystal Surfaces More Slippery?
- Quasistatic Stick-slip in Dislocation Core and Frenkel-Kontorova Chain
- Universality class of a displacive structural phase transition in two dimensions
- Nonmonotonic Magnetic Friction from Collective Rotor Dynamics