Nanoscopic time crystal obtained by nonergodic spin dynamics
Carla Lupo, Cedric Weber

TL;DR
This paper investigates the non-equilibrium dynamics of nanoscopic magnetic spin systems, revealing non-trivial relaxation behaviors, long-lived non-thermal states, and potential implications for nanotechnology through combined Monte Carlo and stochastic Landau-Lifshitz-Gilbert simulations.
Contribution
It introduces a novel study of nanoscopic spin-lattice systems under quenched conditions, highlighting non-trivial dynamical behaviors and long-lived non-thermal states.
Findings
Observation of non-trivial spin relaxation dynamics.
Identification of long-lived non-thermal states.
Structural effects on magnetization at finite temperature.
Abstract
We study the far-from-equilibrium properties of quenched magnetic nanoscopic classical spin systems. In particular, we focus on the interplay between lattice vibrations and magnetic frustrations induced by surface effects typical of an antiferromagnet. We use a combination of Monte Carlo simulations and explore the dynamical behaviours by solving the stochastic Landau-Lifshitz-Gilbert equation at finite temperature. The Monte Carlo approach treats both the ionic degrees of freedom and spin variables on the same footing, via an extended Lennard-Jones Hamiltonian with a spin-lattice coupling. The zero temperature phase diagram of the finite size nanoscopic systems with respect to the range of the Heisenberg interaction and the Lennard-Jones coupling constant shows two main structures with non-trivial magnetisation triggered by antiferromagnetism: a simple cubic and a body-centred cubic.…
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