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Inductance Meets Memory in the Quantum Magnet Mn3Si2Te6

Strongly Correlated Electrons 2026-04-20 v1 Applied Physics

Abstract

Orbital degrees of freedom offer a largely untapped route to emergent dynamical phenomena in correlated quantum materials. However, it remains unclear whether collective orbital states can intrinsically generate both reactive and memory functionalities in a bulk system. Here we show that in the ferrimagnet Mn3Si2Te6, nonequilibrium reconfiguration of chiral orbital currents produces both emergent inductance and nonvolatile memristance as intrinsic properties of a single crystal. At low frequency and under a magnetic field along the c axis, coherent orbital-current domains generate robust clockwise inductive I-V loops. At higher frequency and low field, current-driven first-order reconfiguration leads to incomplete reversal and metastable trapping, producing an intrinsic electromotive force and a finite remanent voltage at zero current. These results establish orbital currents as a class of quantum state variables that encode both reactive and memory functionalities, opening routes toward intrinsically reconfigurable and energy-efficient electronic systems.

Keywords

Cite

@article{arxiv.2604.15635,
  title  = {Inductance Meets Memory in the Quantum Magnet Mn3Si2Te6},
  author = {Tristan R. Cao and Gabriel Schebel and Arabella Quane and Hengdi Zhao and Yu Zhang and Feng Ye and Longji Cui and Gang Cao},
  journal= {arXiv preprint arXiv:2604.15635},
  year   = {2026}
}

Comments

5 figures. Communications Physics (2026)

R2 v1 2026-07-01T12:13:43.703Z