| TOPICAL REVIEW — Multiferroicity and multicaloric effects |
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Recent advances in multiferroics and magnetoelectrics |
| Zhen Liu(刘振), Jing-Bo Zhou(周靖博), Pin-Yi Zeng(曾品一), Hao-Wen Wang(王好文), and Cheng-Liang Lu(陆成亮)† |
| School of Physics and Wuhan National High Magnetic Field Center, Wuhan 430074, China |
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Abstract Multiferroics, where multiple ferroic orders coexist and couple, have been one of the most active fields in condensed matter physics over the past two decades. In particular, the cross-control between magnetic and electric variables, i.e., the magnetoelectric coupling effect, provides a unique advantage for developing low-consumption electronic devices. In recent years, the field has seen a fundamental expansion of its scope to include topological magnetoelectricity and two-dimensional (2D) multiferroics. This review mainly focuses on the progress made in the last decade, covering new material exploration and emerging physical phenomena. It begins with an overview of linear magnetoelectricity, continues with detailed discussions of emerging topological magnetoelectricity and 2D multiferroics, and ends with an outlook on future developments for multiferroicity and magnetoelectric coupling.
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Received: 07 November 2025
Revised: 04 January 2026
Accepted manuscript online: 16 January 2026
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PACS:
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75.85.+t
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(Magnetoelectric effects, multiferroics)
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75.25.-j
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(Spin arrangements in magnetically ordered materials (including neutron And spin-polarized electron studies, synchrotron-source x-ray scattering, etc.))
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75.25.Dk
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(Orbital, charge, and other orders, including coupling of these orders)
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71.70.Ej
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(Spin-orbit coupling, Zeeman and Stark splitting, Jahn-Teller effect)
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| Fund: Project supported by the National Key Research and Development Program of China (Grant No. 2024YFA1611200) and the National Natural Science Foundation of China (Grant Nos. 12474085 and 12574095). |
Corresponding Authors:
Cheng-Liang Lu
E-mail: cllu@hust.edu.cn
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Cite this article:
Zhen Liu(刘振), Jing-Bo Zhou(周靖博), Pin-Yi Zeng(曾品一), Hao-Wen Wang(王好文), and Cheng-Liang Lu(陆成亮) Recent advances in multiferroics and magnetoelectrics 2026 Chin. Phys. B 35 077504
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