Topological Kinetic Crossover in a Nanomagnet Array
Abstract
Ergodic kinetics, which are critical to equilibrium thermodynamics, can be constrained by a system's topology. We study a model nanomagnetic array in which such constraints visibly affect the behavior. In this system, magnetic excitations connect into thermally active one-dimensional strings whose motion can be imaged in real time. At high temperatures, we observe the merging, breaking, and reconnecting of strings, resulting in the system transitioning between topologically distinct configurations. Below a crossover temperature, the string motion is dominated by simple changes in length and shape. In this low temperature regime, the system is energetically stable because of its inability to explore all possible topological configurations. This kinetic crossover suggests a generalizable conception of topologically broken ergodicity and limited equilibration.
Cite
@article{arxiv.2305.11973,
title = {Topological Kinetic Crossover in a Nanomagnet Array},
author = {Xiaoyu Zhang and Grant Fitez and Shayaan Subzwari and Nicholas S. Bingham and Ioan-Augustin Chioar and Hilal Saglam and Justin Ramberger and Chris Leighton and Cristiano Nisoli and Peter Schiffer},
journal= {arXiv preprint arXiv:2305.11973},
year = {2023}
}
Comments
10 pages main text, 5 figures, 11 pages supplementary material