English

Persistent dynamic magnetic state in artificial honeycomb spin ice

Strongly Correlated Electrons 2023-09-12 v1 Quantum Physics

Abstract

Topological magnetic charges, arising due to the non-vanishing magnetic flux on spin ice vertices, serve as the origin of magnetic monopoles that traverse the underlying lattice effortlessly. Unlike spin ice materials of atomic origin, the dynamic state in artificial honeycomb spin ice is conventionally described in terms of finite size domain wall kinetics that require magnetic field or current application. Contrary to this common understanding, here we show that thermally tunable artificial permalloy honeycomb lattice manifests a perpetual dynamic state due to self-propelled magnetic charge defect relaxation in the absence of any external tuning agent. Quantitative investigation of magnetic charge defect dynamics using neutron spin echo spectroscopy reveals sub-ns relaxation times that are comparable to monopole's relaxation in bulk spin ices. Most importantly, the kinetic process remains unabated at low temperature where thermal fluctuation is negligible. This suggests that dynamic phenomena in honeycomb spin ice are mediated by quasi-particle type entities, also confirmed by quantum Monte-Carlo simulations that replicate the kinetic behavior. Our research unveils a new `macroscopic' magnetic particle that shares many known traits of quantum particles, namely magnetic monopole and magnon.

Keywords

Cite

@article{arxiv.2305.00093,
  title  = {Persistent dynamic magnetic state in artificial honeycomb spin ice},
  author = {Jiasen Guo and Pousali Ghosh and Daniel Hill and Yiyao Chen and Laura Stingaciu and Piotr. Zolnierczuk and Carsten A. Ullrich and Deepak K. Singh},
  journal= {arXiv preprint arXiv:2305.00093},
  year   = {2023}
}

Comments

12 figures, 15 pages

R2 v1 2026-06-28T10:21:11.420Z