X-type stacking in cross-chain antiferromagnets
Abstract
Physical phenomena in condensed matter normally arise from the collective effect of all atoms, while selectively addressing a lone atomic sublattice by external stimulus is elusive. The later functionality may, however, benefit various applications, as the response may differ when the external stimulus affects only a specific sublattice rather than the entire solid. Here, we introduce cross-chain antiferromagnets, where the stacking of two magnetic sublattices forms a pattern of intersecting atomic chains, allowing for the sublattice selectivity. We dub this antiferromagnetic (AFM) stacking X-type and demonstrate that it exhibits unique spin-dependent transport properties not present in conventional magnets. Through high-throughput analyses and computations, we unveil three prototypes of X-type AFM stacking and identify 15 candidate candidates. Using -FePO as a representative X-type antiferromagnet, we predict sublattice-selective spin-polarized transport driven by the X-type stacking, where one magnetic sublattice conducts, while the other does not. Consequently, a spin torque can be exerted solely on a single sublattice, leading to unconventional ultrafast dynamics of the N\`eel vector capable of deterministic switching of the AFM domains. Our work uncovers a previously overlooked type of magnetic moment stacking and reveals sublattice-selective physical properties promising for high-performance spintronic applications.
Cite
@article{arxiv.2310.13271,
title = {X-type stacking in cross-chain antiferromagnets},
author = {Shui-Sen Zhang and Zi-An Wang and Bo Li and Yuan-Yuan Jiang and Shu-Hui Zhang and Rui-Chun Xiao and Lan-Xin Liu and X. Luo and W. J. Lu and Mingliang Tian and Y. P. Sun and Evgeny Y. Tsymbal and Haifeng Du and Ding-Fu Shao},
journal= {arXiv preprint arXiv:2310.13271},
year = {2025}
}
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