Ferroelectric reversal inverts magnon Berry curvature and anomalous thermal Hall conductivity in 2D multiferroics by inducing tunable sublattice asymmetry.
Ferroelectric Switchable Topological Magnon Hall Effect in Type-I Multiferroics
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Electric control of magnetism at room temperature is crucial for developing next-generation, low-power spintronic devices. However, the intrinsic incompatibility between ferroelectricity and magnetism in crystal symmetry, along with the absence of strong magnetoelectric coupling mechanisms, continues to pose major challenges. In this work, we propose a general theoretical framework for magnon manipulation based on ferroelectric polarization switching in two-dimensional multiferroics. Taking monolayer multiferroics $\mbox{Ti}_{2}\mbox{F}_{3}$ as an example, our calculations demonstrate that ferroelectric switching can significantly modulate spin exchanges, thereby enabling nonvolatile and reversible electric control of the magnons. More importantly, the ferroelectric polarization reversal leads to a sign change in the Berry curvature, ensuring effective control over the valley Hall and nonlinear Hall response of magnons. This study provides a new way for realizing low-power and electrically controllable magnonic devices.
fields
cond-mat.mtrl-sci 1years
2026 1verdicts
UNVERDICTED 1representative citing papers
citing papers explorer
-
Symmetry-dictated switching of antiferromagnetic magnon transport in 2D multiferroics
Ferroelectric reversal inverts magnon Berry curvature and anomalous thermal Hall conductivity in 2D multiferroics by inducing tunable sublattice asymmetry.