Emergent Altermagnetic Multiferroicity via Ferroelectrically Driven Magnetic Phase Transition

ABSTRACT Altermagnetic multiferroicity is rapidly emerging as a transformative paradigm for both condensed matter physics and advanced spintronics. However, existing magnetoelectric mechanisms are inherently restricted to structural inversions, which merely reverse the momentum‐space spin splitting. Here, guided by symmetry principles and microscopic modeling, we unveil an emergent class of altermagnetic multiferroicity in 2D heterobilayers. This mechanism utilizes out‐of‐plane ferroelectric polarization to govern the interlayer coupling, thereby tuning the competition between localized antiferromagnetic superexchange and itinerant ferromagnetic double‐exchange. Crucially, this interfacial modulation triggers a reversible magnetic phase transition between a trivial ferromagnetic state and an altermagnetic state, establishing a distinct magnetoelectric coupling mechanism. Using first‐principles calculations, we demonstrate this mechanism in MnPS 3 /Sc 2 CO 2 heterostructure, where we further predict the emergence of two distinct altermagnetic phases. Our findings transcend geometric restrictions, establishing a physical framework for nonvolatile and programmable altermagnetic spintronics.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-04
DOI
https://doi.org/10.1002/adfm.78211
Primary Topic
Multiferroics and related materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Emergent Altermagnetic Multiferroicity via Ferroelectrically Driven Magnetic Phase Transition

Baibiao Huang, Yandong Ma, Ying Dai, Guoli Wu et al.
Advanced Functional Materials
Multiferroics and related materials
article

Emergent Altermagnetic Multiferroicity via Ferroelectrically Driven Magnetic Phase Transition

Baibiao Huang, Yandong Ma, Ying Dai, Guoli Wu, Yangyang Feng, Xinru Li
article en

Abstract

ABSTRACT Altermagnetic multiferroicity is rapidly emerging as a transformative paradigm for both condensed matter physics and advanced spintronics. However, existing magnetoelectric mechanisms are inherently restricted to structural inversions, which merely reverse the momentum‐space spin splitting. Here, guided by symmetry principles and microscopic modeling, we unveil an emergent class of altermagnetic multiferroicity in 2D heterobilayers. This mechanism utilizes out‐of‐plane ferroelectric polarization to govern the interlayer coupling, thereby tuning the competition between localized antiferromagnetic superexchange and itinerant ferromagnetic double‐exchange. Crucially, this interfacial modulation triggers a reversible magnetic phase transition between a trivial ferromagnetic state and an altermagnetic state, establishing a distinct magnetoelectric coupling mechanism. Using first‐principles calculations, we demonstrate this mechanism in MnPS 3 /Sc 2 CO 2 heterostructure, where we further predict the emergence of two distinct altermagnetic phases. Our findings transcend geometric restrictions, establishing a physical framework for nonvolatile and programmable altermagnetic spintronics.

Advanced Functional Materials
Shandong University (CN), Dezhou University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 27%
Multiferroics and related materials
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Emergent Altermagnetic Multiferroicity via Ferroelectrically Driven Magnetic Phase Transition — Baibiao Huang, Yandong Ma, et al. · Advanced Functional Materials (2026) | TGRS Research Map | TGRS