Enumeration and Representation Theory of Spin Space Groups

齐次空间 对称群 理论物理学 物理 空间组 空格(标点符号) 自旋(空气动力学) 群(周期表) 数学 晶体学点群 量子力学 几何学 计算机科学 X射线晶体学 热力学 操作系统 衍射 分子
作者
Xiaobing Chen,Jun Ren,Yanzhou Zhu,Yutong Yu,Ao Zhang,Pengfei Liu,Jiayu Li,Yuntian Liu,Cai Heng Li,Qihang Liu
出处
期刊:Physical Review X [American Physical Society]
卷期号:14 (3) 被引量:123
标识
DOI:10.1103/physrevx.14.031038
摘要

Fundamental physical properties, such as phase transitions, electronic structures, and spin excitations, in all magnetic ordered materials, were ultimately believed to rely on the symmetry theory of magnetic space groups. Recently, it has come to light that a more comprehensive group, known as the spin space group (SSG), which combines separate spin and spatial operations, is necessary to fully characterize the geometry and underlying properties of magnetic ordered materials. However, the basic theory of SSG has seldom been developed. In this work, we present a systematic study of the enumeration and the representation theory of the SSG. Starting from the 230 crystallographic space groups and finite translation groups with a maximum order of eight, we establish an extensive collection of over 100 000 SSGs under a four-index nomenclature as well as international notation. We then identify inequivalent SSGs specifically applicable to collinear, coplanar, and noncoplanar magnetic configurations. To facilitate the identification of the SSG, we develop an online program that can determine the SSG symmetries of any magnetic ordered crystal. Moreover, we derive the irreducible corepresentations of the little group in momentum space within the SSG framework. Finally, we illustrate the SSG symmetries and physical effects beyond the framework of magnetic space groups through several representative material examples, including a candidate altermagnet RuO2, spiral spin polarization in the coplanar antiferromagnet CeAuAl3, and geometric Hall effect in the noncoplanar antiferromagnet CoNb3S6. Our work advances the field of group theory in describing magnetic ordered materials, opening up avenues for deeper comprehension and further exploration of emergent phenomena in magnetic materials. Published by the American Physical Society 2024
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