Giant Room-Temperature Third-Order Electrical Transport in a Thin-Film Altermagnet Candidate

Fuente: arXiv
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Main Authors: Chen, Hongyu, Qin, Peixin, Meng, Ziang, Zhao, Guojian, Chen, Kai, Xi, Chuanying, Wang, Xiaoning, Liu, Li, Duan, Zhiyuan, Jiang, Sixu, Li, Jingyu, Tan, Xiaoyang, Liu, Jinghua, Wang, Jianfeng, Liu, Huiying, Jiang, Chengbao, Liu, Zhiqi
Format: Preprint
Published: 2026
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author Chen, Hongyu
Qin, Peixin
Meng, Ziang
Zhao, Guojian
Chen, Kai
Xi, Chuanying
Wang, Xiaoning
Liu, Li
Duan, Zhiyuan
Jiang, Sixu
Li, Jingyu
Tan, Xiaoyang
Liu, Jinghua
Wang, Jianfeng
Liu, Huiying
Jiang, Chengbao
Liu, Zhiqi
author_facet Chen, Hongyu
Qin, Peixin
Meng, Ziang
Zhao, Guojian
Chen, Kai
Xi, Chuanying
Wang, Xiaoning
Liu, Li
Duan, Zhiyuan
Jiang, Sixu
Li, Jingyu
Tan, Xiaoyang
Liu, Jinghua
Wang, Jianfeng
Liu, Huiying
Jiang, Chengbao
Liu, Zhiqi
contents Quantum geometry, a quantum mechanical quantity comprised of Berry curvature and quantum metric, describes the geometric structure of the electronic bands in solids. The correlation between nontrivial quantum geometry and quantum materials leads to new findings in condensed matter systems. Here we demonstrate that altermagnets, with spontaneously broken time-reversal (T)- half-lattice-translation and parity-time symmetry, host both T-odd and T-even quantum geometric quantities that simultaneously manifest themselves despite the vanishing net magnetization. Consequently, giant room-temperature third-order electrical transport responses with sizable quantum geometric contributions are observed in (101)-oriented RuO2 thin films, an altermagnetic candidate; in particular, the third-order Hall effect is intimately correlated with altermagnetic order and can serve as a promising tool for detecting the Neel vector. Our work not only supports the existence of altermagnetism in 8-nm-thick RuO2 thin films, but also shows altermagnets as a versatile platform for exploring quantum geometry and constructing quantum electronic and spintronic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2604_13893
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Giant Room-Temperature Third-Order Electrical Transport in a Thin-Film Altermagnet Candidate
Chen, Hongyu
Qin, Peixin
Meng, Ziang
Zhao, Guojian
Chen, Kai
Xi, Chuanying
Wang, Xiaoning
Liu, Li
Duan, Zhiyuan
Jiang, Sixu
Li, Jingyu
Tan, Xiaoyang
Liu, Jinghua
Wang, Jianfeng
Liu, Huiying
Jiang, Chengbao
Liu, Zhiqi
Mesoscale and Nanoscale Physics
Materials Science
Strongly Correlated Electrons
Superconductivity
Applied Physics
Quantum geometry, a quantum mechanical quantity comprised of Berry curvature and quantum metric, describes the geometric structure of the electronic bands in solids. The correlation between nontrivial quantum geometry and quantum materials leads to new findings in condensed matter systems. Here we demonstrate that altermagnets, with spontaneously broken time-reversal (T)- half-lattice-translation and parity-time symmetry, host both T-odd and T-even quantum geometric quantities that simultaneously manifest themselves despite the vanishing net magnetization. Consequently, giant room-temperature third-order electrical transport responses with sizable quantum geometric contributions are observed in (101)-oriented RuO2 thin films, an altermagnetic candidate; in particular, the third-order Hall effect is intimately correlated with altermagnetic order and can serve as a promising tool for detecting the Neel vector. Our work not only supports the existence of altermagnetism in 8-nm-thick RuO2 thin films, but also shows altermagnets as a versatile platform for exploring quantum geometry and constructing quantum electronic and spintronic devices.
title Giant Room-Temperature Third-Order Electrical Transport in a Thin-Film Altermagnet Candidate
topic Mesoscale and Nanoscale Physics
Materials Science
Strongly Correlated Electrons
Superconductivity
Applied Physics
url https://arxiv.org/abs/2604.13893