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Electrothermal Manipulation of Current-Induced Phase Transitions in Ferrimagnetic Mn3Si2Te6

Jiaqi Fang1,2,*, Jiawei Hu1,2,*, Xintian Chen1,2,*, Yaotian Liu1,2, Zheng Yin1,2, Zhe Ying1, Yunhao Wang1,2, Ziqiang Wang3, Zhilin Li1,2,† et al.

Shiyu Zhu1,2,‡, Yang Xu1,2,§, Sokrates T. Pantelides4,2, and Hong-Jun Gao1,2,5,∥

  • *These authors contributed equally to this work.
  • †Contact author: lizhilin@iphy.ac.cn
  • ‡Contact author: syzhu@iphy.ac.cn
  • §Contact author: yang.xu@iphy.ac.cn
  • ∥Contact author: hjgao@iphy.ac.cn

Phys. Rev. Lett. 134, 256302 – Published 25 June, 2025

DOI: https://doi.org/10.1103/ry2d-bgyy

Abstract

Phase transitions driven by external parameters are fundamental to condensed matter physics, providing critical insights into symmetry breaking and emergent phenomena. Recently, ferrimagnetic Mn3Si2Te6 has attracted considerable attention for its magnetic-field-induced insulator-metal transitions and current-driven phase transitions, but the role of applied currents in the magnetic phase remains poorly understood. Here, we employ local magnetization probes and time-resolved transport measurements to investigate the current-induced phase transitions. Magnetic force microscopy with controlled current flow reveals the evolution of ferrimagnetic domains and a first-order-like magnetic phase transition with an abrupt voltage jump. The measurements with rectangular pulsed currents reveal that the time evolution of resistance closely mirrors the resistance-temperature profile, highlighting the role of heat accumulation and a positive-feedback mechanism in the current-induced phase transitions. Furthermore, we demonstrate that the intrinsic current-voltage characteristics adhere to Ohm’s law, displaying linearity across various magnetic fields and temperatures. Our work advocates for a cautious approach in distinguishing between genuine current-induced nonequilibrium quantum states and thermal effects.

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