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Magnetic anisotropy in single-crystalline antiferromagnetic Mn2Au

2024/04/23 by Mebatsion S. Gebre, Rebecca K. Banner, Gebre, Mebatsion S. +11
Materials Science · Physics and Astronomy · #FOS: Physical sciences #Magnetic Properties of Alloys #Magnetic and transport properties of perovskites and related materials #Magnetic properties of thin films #Materials Science (cond-mat.mtrl-sci)

paper · pdf · doi:10.48550/arxiv.2404.15525

openalex publication_date 2024/04/23 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

Multiple recent studies have identified the metallic antiferromagnet Mn2Au to be a candidate for spintronic applications due to apparent in-plane anisotropy, preserved magnetic properties above room temperature, and current-induced Néel vector switching. Crystal growth is complicated by the fact that Mn2Au melts incongruently. We present a bismuth flux method to grow millimeter-scale bulk single crystals of Mn2Au in order to examine the intrinsic anisotropic electrical and magnetic properties. Flux quenching experiments reveal that the Mn2Au crystals precipitate below 550°C, about 100°C below the decomposition temperature of Mn2Au. Bulk Mn2Au crystals have a room-temperature resistivity of 16-19 μΩ-cm and a residual resistivity ratio of 41. Mn2Au crystals have a dimensionless susceptibility on the order of 10-4, comparable to calculated and experimental reports on powder samples. Single-crystal neutron diffraction confirms the in-plane magnetic structure. The tetragonal symmetry of Mn2Au constrains the ab-plane magnetic susceptibility to be constant, meaning that χ100110 in the low-field limit, below any spin-flop transition. We find that three measured magnetic susceptibilities χ100, χ110, and χ001 are the same order of magnitude and agree with the calculated prediction, meaning the low-field susceptibility of Mn2Au is quite isotropic, despite clear differences in ab-plane and ac-plane magnetocrystalline anisotropy. Mn2Au is calculated to have an extremely high in-plane spin-flop field above 30 T, which is much larger than that of another in-plane antiferromagnet Fe2As (less than 1 T). The subtle anisotropy of intrinsic susceptibilities may lead to dominating effects from shape, crystalline texture, strain, and defects in devices that attempt spin readout in Mn2Au.

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