Friction Anomalies at First-Order Transition Spinodals: 1T-TaS$_2$
Abstract
Revealing phase transitions of solids through mechanical anomalies in the friction of nanotips sliding on their surfaces is an unconventional and instructive tool for continuous transitions, unexplored for first-order ones. Owing to slow nucleation, first-order structural transformations generally do not occur at the precise crossing of free energies, but hysteretically, near the spinodal temperatures where, below and above the thermodynamic transition temperature, one or the other metastable free energy branches terminates. The spinodal transformation, a collective one-shot event with no heat capacity anomaly, is easy to trigger by a weak external perturbations. Here we propose that even the gossamer mechanical action of an AFM tip may locally act as a surface trigger, narrowly preempting the spontaneous spinodal transformation, and making it observable as a nanofrictional anomaly. Confirming this expectation, the CCDW-NCCDW first-order transition of the important layer compound 1T-TaS is shown to provide a demonstration of this effect.
Keywords
Cite
@article{arxiv.1709.02602,
title = {Friction Anomalies at First-Order Transition Spinodals: 1T-TaS$_2$},
author = {Emanuele Panizon and Torben Marx and Dirk Dietzel and Franco Pellegrini and Giuseppe E. Santoro and Andre Schirmeisen and Erio Tosatti},
journal= {arXiv preprint arXiv:1709.02602},
year = {2018}
}
Comments
8 pages, 5 figures