Issue 47, 2025, Issue in Progress

Unveiling ferroelectric and altermagnetic coexistence in multiferroic HfMnO3 perovskite

Abstract

Multiferroic materials, which simultaneously exhibit electric and magnetic ordering, have garnered increasing attention due to their potential to revolutionize next-generation spintronic, memory, and multifunctional devices. Their unique ability to couple electric polarization and magnetic states offers low-power operation, electric field control of magnetism, and enhanced device scalability. Among these, altermagnetic multiferroics are particularly promising for enabling spin-polarized transport without stray fields. In this context, we have systematically investigated the structural, electronic, ferroelectric, and optical properties of the trigonal R3c-phase HfMnO3 using first-principles density functional theory. The compound is found to be thermodynamically and dynamically stable, with a Goldschmidt tolerance factor of 0.88 supporting a distorted perovskite framework. The spin-resolved band structure revealed energy-dependent spin splitting without net magnetization, which is characteristic of altermagnetic behavior. Furthermore, our Berry phase calculations predict a robust spontaneous polarization of approximately 104 μC cm−2 along the [111] direction, positioning HfMnO3 as a strong ferroelectric candidate. Remarkably, the polarization-switched state retains both dynamic and electronic stability while preserving the altermagnetic signatures, confirming the multiferroic nature of the material. Optical analyses show high UV absorption, a notable refractive index, and plasmonic features above 7.5 eV, suggesting potential applications in optoelectronics and UV photodetectors. These findings establish HfMnO3 as a promising altermagnetic multiferroic oxide for multifunctional applications in spintronic and optoelectronic technologies.

Graphical abstract: Unveiling ferroelectric and altermagnetic coexistence in multiferroic HfMnO3 perovskite

Article information

Article type
Paper
Submitted
02 Jul 2025
Accepted
05 Oct 2025
First published
20 Oct 2025
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2025,15, 39951-39961

Unveiling ferroelectric and altermagnetic coexistence in multiferroic HfMnO3 perovskite

A. Zaman, S. H. Alrefaee, S. Shomurotova, A. Nurmuhammedov, S. Knani, V. Tirth, A. Algahtani and N. Elboughdiri, RSC Adv., 2025, 15, 39951 DOI: 10.1039/D5RA04705F

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