Unconventional Magnetism: Symmetry Classification, Hybrid-parity and Unconstrained-parity Classes

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Hauptverfasser: Luo, Xun-Jiang, Li, Dan, Xiao, Rui-Chun, Shao, Ding-Fu, Li, Lei, Tian, Mingliang, Yao, Yugui
Format: Preprint
Veröffentlicht: 2026
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author Luo, Xun-Jiang
Li, Dan
Xiao, Rui-Chun
Shao, Ding-Fu
Li, Lei
Tian, Mingliang
Yao, Yugui
author_facet Luo, Xun-Jiang
Li, Dan
Xiao, Rui-Chun
Shao, Ding-Fu
Li, Lei
Tian, Mingliang
Yao, Yugui
contents Unconventional magnetism has emerged as a transformative frontier in condensed matter physics. Such phases are characterized by substantial non-relativistic spin splitting (NSS) in symmetry-compensated magnets. They have been classified by the parity of their spin textures under momentum inversion, leading to the paradigms of altermagnets (even-parity) and odd-parity magnets. However, the full symmetry landscape remains largely unexplored. In this Letter, we present a systematic classification framework for unconventional magnetism based on the representation theory of the spin textures and the associated parity properties. Within this framework, we predict two previously unidentified classes beyond the established pure-parity categories: hybrid-parity magnets (HPMs) and unconstrained-parity magnets (UPMs), where the spin textures exhibit contrasting parities among their Cartesian components and the parity of the spin textures is ill-defined, respectively. We derive universal symmetry criteria that categorize HPMs into three distinct types. Importantly, by combining the spin splitting characteristics of altermagnets and odd-parity magnets, HPMs can enable the coexistence of the spin current and Edelstein effects. Taking FePO4 as an example, we perform first-principles calculations to demonstrate this coexistence. Finally, we discuss the potential applications of HPMs in spintronic devices. Our work provides a comprehensive symmetry classification of unconventional magnetism and establishes HPMs as a promising platform for multi-functional spintronics.
format Preprint
id arxiv_https___arxiv_org_abs_2605_21336
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Unconventional Magnetism: Symmetry Classification, Hybrid-parity and Unconstrained-parity Classes
Luo, Xun-Jiang
Li, Dan
Xiao, Rui-Chun
Shao, Ding-Fu
Li, Lei
Tian, Mingliang
Yao, Yugui
Materials Science
Strongly Correlated Electrons
Unconventional magnetism has emerged as a transformative frontier in condensed matter physics. Such phases are characterized by substantial non-relativistic spin splitting (NSS) in symmetry-compensated magnets. They have been classified by the parity of their spin textures under momentum inversion, leading to the paradigms of altermagnets (even-parity) and odd-parity magnets. However, the full symmetry landscape remains largely unexplored. In this Letter, we present a systematic classification framework for unconventional magnetism based on the representation theory of the spin textures and the associated parity properties. Within this framework, we predict two previously unidentified classes beyond the established pure-parity categories: hybrid-parity magnets (HPMs) and unconstrained-parity magnets (UPMs), where the spin textures exhibit contrasting parities among their Cartesian components and the parity of the spin textures is ill-defined, respectively. We derive universal symmetry criteria that categorize HPMs into three distinct types. Importantly, by combining the spin splitting characteristics of altermagnets and odd-parity magnets, HPMs can enable the coexistence of the spin current and Edelstein effects. Taking FePO4 as an example, we perform first-principles calculations to demonstrate this coexistence. Finally, we discuss the potential applications of HPMs in spintronic devices. Our work provides a comprehensive symmetry classification of unconventional magnetism and establishes HPMs as a promising platform for multi-functional spintronics.
title Unconventional Magnetism: Symmetry Classification, Hybrid-parity and Unconstrained-parity Classes
topic Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2605.21336