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This paper identifies a family of multiferroic materials (wurtzite MnX) that could be used to create electrically controllable spin-based devices. The research highlights the potential of these materials for altermagnetic spintronics, where spin splitting can be controlled by ferroelectric polarization. The discovery of a g-wave altermagnetic state and the ability to reverse spin splitting through polarization switching are significant advancements.
Reference

Cr doping drives a transition to an A-type AFM phase that breaks Kramers spin degeneracy and realizes a g-wave altermagnetic state with large nonrelativistic spin splitting near the Fermi level. Importantly, this spin splitting can be deterministically reversed by polarization switching, enabling electric-field control of altermagnetic electronic structure without reorienting the Neel vector or relying on spin-orbit coupling.

Research#Spintronics🔬 ResearchAnalyzed: Jan 10, 2026 07:20

Spin-Orbit Torque Enhancement in Graphene via CrSBr Integration

Published:Dec 25, 2025 11:34
1 min read
ArXiv

Analysis

This research explores a novel method to control spin currents in graphene, a material with significant potential in spintronics. The study's focus on proximity-induced spin-orbit torque offers a path toward more efficient and versatile spin-based electronic devices.
Reference

The study investigates Proximity-Induced Spin-Orbit Torque in Graphene on a Trigonal CrSBr Monolayer.