Metallic $p$-wave magnet with commensurate spin helix
Abstract
Antiferromagnetic states with spin-split electronic structure give rise to novel spintronic, magnonic, and electronic phenomena despite (near-) zero net magnetization. The simplest odd-parity spin splitting - -wave - was originally proposed to emerge from a collective instability in interacting electron systems. Recent theory identifies a distinct route to realise -wave spin-split electronic bands without strong correlations, termed -wave magnetism. Here we demonstrate an experimental realisation of a metallic -wave magnet. The odd-parity spin splitting of delocalised conduction electrons arises from their coupling to an antiferromagnetic texture of localised magnetic moments: a coplanar spin helix whose magnetic period is an even multiple of the chemical unit cell, as revealed by X-ray scattering experiments. This texture breaks space inversion symmetry but preserves time-reversal () symmetry up to a half-unit-cell translation - thereby fulfilling the symmetry conditions for -wave magnetism. Consistent with theoretical predictions, our -wave magnet exhibits a characteristic anisotropy in the electronic conductivity. Relativistic spin-orbit coupling and a tiny spontaneous net magnetization further break symmetry, resulting in a giant anomalous Hall effect (AHE, S/cm, Hall angle ), for an antiferromagnet. Our model calculations show that the spin nodal planes found in the electronic structure of -wave magnets are readily gapped by a small perturbation to induce the AHE.
Keywords
Cite
@article{arxiv.2502.10386,
title = {Metallic $p$-wave magnet with commensurate spin helix},
author = {Rinsuke Yamada and Max T. Birch and Priya R. Baral and Shun Okumura and Ryota Nakano and Shang Gao and Motohiko Ezawa and Takuya Nomoto and Jan Masell and Yuki Ishihara and Kamil K. Kolincio and Ilya Belopolski and Hajime Sagayama and Hironori Nakao and Kazuki Ohishi and Takashi Ohhara and Ryoji Kiyanagi and Taro Nakajima and Yoshinori Tokura and Taka-hisa Arima and Yukitoshi Motome and Moritz M. Hirschmann and Max Hirschberger},
journal= {arXiv preprint arXiv:2502.10386},
year = {2025}
}
Comments
24 pages, 4 figures