Alternating spin splitting of electronic and magnon bands in two-dimensional altermagnetic materials

Qian Wang, Da-Wei Wu, Guang-Hua Guo, Meng-Qiu Long, Yun-Peng Wang
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Abstract

Unconventional antiferromagnetism dubbed as altermagnetism was firstly discovered in rutile structured magnets, which is featured by spin splitting even without the spin-orbit coupling effect. This interesting phenomenon has led to the discovery of more altermagnetic materials. In this work, we explore two-dimensional altermagnetic materials by studying two series of two-dimensional magnets, including MF4 with M covering all 3d and 4d transition metal elements, as well as TS2 with T = V, Cr, Mn, Fe. Through the magnetic symmetry operation of the RuF4 and MnS2, it was verified that breaking the time inversion is a necessary condition for spin splitting. Based on symmetry analysis and first-principles calculations, we found that the electronic bands and magnon dispersion experience alternating spin splitting along the same path. This work paves the way for exploring altermagnetism in two-dimensional materials.
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二维改磁材料中电子带和磁子带的交替自旋分裂
被称为 "变磁 "的非常规反铁磁性首先是在金红石结构磁体中发现的,其特点是即使没有自旋轨道耦合效应,也能产生自旋分裂。这一有趣的现象促使人们发现了更多的改磁材料。在这项工作中,我们通过研究两个系列的二维磁体来探索二维变磁材料,包括 MF4(M 涵盖所有 3d 和 4d 过渡金属元素)和 TS2(T = V、Cr、Mn、Fe)。通过对 RuF4 和 MnS2 的磁对称操作,验证了打破时间反转是自旋分裂的必要条件。基于对称性分析和第一性原理计算,我们发现电子带和磁子色散沿同一路径经历了交替的自旋分裂。这项工作为探索二维材料中的变磁性铺平了道路。
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