Low-temperature hysteresis broadening emerging from domain-wall creep dynamics in a two-phase competing system
Abstract
Hysteretic behaviour accompanies any first-order phase transition, forming a basis for many applications. However, its quantitative understanding remains challenging, and even a qualitative understanding of pronounced hysteresis broadening at low temperature, which is often observed in magnetic-field-induced first-order phase transition materials, is unclear. Here, we show that such pronounced hysteresis broadening emerges if the phase-front velocity during the first-order phase transition exhibits an activated behaviour as a function of both temperature and magnetic field. This is demonstrated by using real-space magnetic imaging techniques, for the magnetic-field-induced first-order phase transition between antiferromagnetic and ferrimagnetic phases in (FeZn)MoO. When combined with the Kolmogorov-Avrami-Ishibashi model, the observed activated temperature- and field-dependences of the growth velocity of the emerging antiferromagnetic domain quantitatively reproduce the pronounced hysteresis broadening. Furthermore, the same approach also reproduces the field-sweep-rate dependence of the transition field observed in the experiment. Our findings thus provide a quantitative and comprehensive understanding of pronounced hysteresis broadening from the microscopic perspective of domain growth.
Keywords
Cite
@article{arxiv.2309.10213,
title = {Low-temperature hysteresis broadening emerging from domain-wall creep dynamics in a two-phase competing system},
author = {Keisuke Matsuura and Yo Nishizawa and Yuto Kinoshita and Takashi Kurumaji and Atsushi Miyake and Hiroshi Oike and Masashi Tokunaga and Yoshinori Tokura and Fumitaka Kagawa},
journal= {arXiv preprint arXiv:2309.10213},
year = {2023}
}
Comments
32 pages, 8 figures