Odd-Parity Chiral Magnons in Collinear Antiferromagnetic Multiferroics: Symmetry Classification and Ferroelectric Switching
Quanchao Du, Zhenlong Zhang Yuanjun Jin, Rui Li, Haibo Xie, Jinlian Lu, Zhe Wang, Zhijun Jiang, Lei Zhang, and Jinyang Ni

TL;DR
This paper identifies a class of collinear antiferromagnetic multiferroics where ferroelectric switching induces reversible odd-parity chiral magnons, enabling non-volatile control of magnonic properties for spintronics.
Contribution
It introduces a new mechanism for ferroelectric control of chiral magnons via intra-sublattice DMI in multiferroics, supported by symmetry analysis and material validation.
Findings
Reversible odd-parity chiral magnons induced by ferroelectric switching.
Chiral splitting exhibits three planar odd-parity forms: f-wave, p-wave, and fully-gapped.
Material candidates validated through density functional theory calculations.
Abstract
The coupling between ferroelectrics and magnetism presents a promising avenue for low-dissipation spintronic devices. However, such couplings remain rare, and the direct realization of magnetic order driven by ferroelectric switching in insulators continues to pose a significant challenge. Here, we identify a class of collinear antiferromagnetic multiferroics in which intra-sublattice Dzyaloshinskii-Moriya interaction (DMI) induces odd-parity chiral magnons that are reversible via ferroelectric switching. Leveraging the charge-neutral nature of magnons, such multiferroics enable non-volatile ferroelectric control over magnon spin splitting, Hall transport, and spin polarization in antiferromagnetic insulators. Remarkably, magnetic group analysis and spin wave calculations reveal that the chiral splitting adopts three planar odd-parity forms, f-wave, p-wave, and fully-gapped types, with…
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