High-temperature quantum coherence of spinons in a rare-earth spin chain
Abstract
Conventional wisdom dictates that quantum effects become unimportant at high temperatures. In magnets, when the thermal energy exceeds interactions between atomic magnetic moments, the moments are usually uncorrelated, and classical paramagnetic behavior is observed. This thermal decoherence of quantum spin behaviors is a major hindrance to quantum information applications of spin systems. Remarkably, our neutron scattering experiments on Yb chains in an insulating perovskite crystal defy these conventional expectations. We find a sharply defined spectrum of spinons, fractional quantum excitations of spin-1/2 chains, to persist to temperatures much higher than the scale of the interactions between Yb magnetic moments. The observed sharpness of the spinon continuum's dispersive upper boundary indicates a spinon mean free path exceeding inter-atomic spacings at temperatures more than an order of magnitude above the interaction energy scale. We thus discover an important and highly unique quantum behavior, which expands the realm of quantumness to high temperatures where entropy-governed classical behaviors were previously believed to dominate. Our results have profound implications for spin systems in quantum information applications operating at finite temperatures and motivate new developments in quantum metrology.
Cite
@article{arxiv.2406.16753,
title = {High-temperature quantum coherence of spinons in a rare-earth spin chain},
author = {Lazar L. Kish and Andreas Weichselbaum and Daniel M. Pajerowski and Andrei T. Savici and Andrey Podlesnyak and Leonid Vasylechko and Alexei Tsvelik and Robert Konik and Igor A. Zaliznyak},
journal= {arXiv preprint arXiv:2406.16753},
year = {2025}
}
Comments
17 pages, 4 figures main text plus 19 pages, 7 figures supplementary text