Observation of spin-valley locked nodal lines in a quasi-2D altermagnet
Quanxin Hu, Xingkai Cheng, Qingchen Duan, Yudong Hu, Bei Jiang, Yusen Xiao, Yaqi Li, Mojun Pan, Liwei Deng, Changchao Liu, Guanghan Cao, Zhengtai Liu, Mao Ye, Shan Qiao, Zhanfeng Liu, Zhe Sun, Anyuan Gao, Yaobo Huang, Ruidan Zhong, Junwei Liu, Baiqing Lv, Hong Ding

TL;DR
This paper reports the discovery of spin-valley-locked nodal lines in a layered altermagnet, combining experimental spectroscopy and first-principles calculations to reveal a new topological quantum phase with potential spintronic applications.
Contribution
It introduces a novel spin-valley-locked nodal line phase in altermagnets, demonstrated in Rb-intercalated V2Te2O, combining experimental and theoretical insights.
Findings
Observation of coexistence of spinless and spinful nodal lines near the Fermi level
Spinful nodal lines exhibit uniform spin polarization within valleys and opposite across valleys
Identification of a two-dimensional topological phase with valley-locked spin in an altermagnet
Abstract
The interplay among quantum degrees of freedom-spin, orbital and momentum-has emerged as a fertile ground for realizing magnetic quantum states with transformative potential for electronic and spintronic technologies. Prominent examples include ferromagnetic Weyl semimetals and antiferromagnetic axion insulators. Recently, altermagnets(AMs) have been identified as a distinct spin-splitting class of collinear antiferromagnets(AFMs), characterized by crystal symmetry that connects magnetic sublattices in real space and enforces C-paired spin-momentum locking in reciprocal space. These materials combine the advantages of nonrelativistic spin-polarization akin to FMs and vanished net-magnetization as AFMs, making them highly promising for spintronic applications. Furthermore, they introduce nontrivial spin-momentum locking spin texture as an additional degree of freedom for realizing novel…
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Taxonomy
TopicsTopological Materials and Phenomena · 2D Materials and Applications · Advanced Condensed Matter Physics
