arXiv · 2603.19107
Ferroelectric $p$-wave magnets
Abstract
Couplings between ferroelectric and magnetic orders offer promising routes toward low-dissipation electronics. However, such couplings are notably rare, largely due to the poor compatibility between insulating band structures and ferromagnetism. Here, we study a different strategy: we identify previously overlooked time-reversal-symmetric $p$- and $f$-wave spin-polarized insulating electronic states in ferroelectrics with noncollinear magnetic sublattices. We show that combining spin and magnetic group theory enables a systematic classification of the origin of polar symmetry breaking. We distinguish crystallographic, exchange-, or spin-orbit-driven mechanisms. Furthermore, we identify more than 50 candidate materials. Using first-principles calculations, we demonstrate a pristine, time-reversal-symmetric $p$-wave spin-polarized electronic structure in the well-known multiferroic $\mathrm{GdMn_2O_5}$. We further show that its $p$-wave order can be switched electrically, opening alternative paths toward spintronic and multiferroic functionalities in this class of materials.
Explore related subjects
Keep this discovery
Jan Priessnitz, Anna Birk Hellenes, Riccardo Comin, Libor Šmejkal. 2026-03-19. Ferroelectric $p$-wave magnets. https://arxiv.org/abs/2603.19107
Cite the original work for its findings. Save a collection to share your selection of sources.