Magnetoelectric effect of multiferroic metals

Fuente: arXiv
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Autori principali: Han, Zefei, Wang, Haojin, Li, Yuanchang
Natura: Preprint
Pubblicazione: 2025
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author Han, Zefei
Wang, Haojin
Li, Yuanchang
author_facet Han, Zefei
Wang, Haojin
Li, Yuanchang
contents Much is known about the magnetoelectric effect of multiferroic insulators, yet little is understood about multiferroic metals. In this work, we employ first-principles calculations to identify the sliding van der Waals bilayer $1T$-NbTe$_2$ as a multiferroic metal, where in-plane metallicity coexists with out-of-plane polarization and magnetism. It exhibits linear magnetoelectric response, originating from direct spin-charge interactions as a result of external field-modulated Fermi energy, which differs from the spin-charge-lattice or spin-orbit coupling mechanisms in multiferroic insulators. We derive a universal formula for magnetoelectric coupling parameters of multiferroic metals, which highlights the crucial role of interlayer dielectric permittivity in enhancing performance. Our work provides insights for exploring magnetoelectric coupling mechanisms and designing functional materials with strong magnetoelectric coupling.
format Preprint
id arxiv_https___arxiv_org_abs_2510_22636
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Magnetoelectric effect of multiferroic metals
Han, Zefei
Wang, Haojin
Li, Yuanchang
Materials Science
Mesoscale and Nanoscale Physics
Much is known about the magnetoelectric effect of multiferroic insulators, yet little is understood about multiferroic metals. In this work, we employ first-principles calculations to identify the sliding van der Waals bilayer $1T$-NbTe$_2$ as a multiferroic metal, where in-plane metallicity coexists with out-of-plane polarization and magnetism. It exhibits linear magnetoelectric response, originating from direct spin-charge interactions as a result of external field-modulated Fermi energy, which differs from the spin-charge-lattice or spin-orbit coupling mechanisms in multiferroic insulators. We derive a universal formula for magnetoelectric coupling parameters of multiferroic metals, which highlights the crucial role of interlayer dielectric permittivity in enhancing performance. Our work provides insights for exploring magnetoelectric coupling mechanisms and designing functional materials with strong magnetoelectric coupling.
title Magnetoelectric effect of multiferroic metals
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2510.22636