Spectroscopic origin of giant anomalous Hall effect in an interwoven magnetic kagome metal

Fuente: arXiv
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Main Authors: Cheng, Erjian, Wang, Kaipu, Hao, Yiqing, Chen, Wenqing, Tan, Hengxin, Li, Zongkai, Wang, Meixiao, Gao, Wenli, Wu, Di, Sun, Shuaishuai, Ying, Tianping, Nie, Simin, Li, Yiwei, Schnelle, Walter, Chen, Houke, Zhou, Xingjiang, Koban, Ralf, Chen, Yulin, Yan, Binghai, Yang, Yi-feng, Wu, Weida, Liu, Zhongkai, Felser, Claudia
Format: Preprint
Published: 2024
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author Cheng, Erjian
Wang, Kaipu
Hao, Yiqing
Chen, Wenqing
Tan, Hengxin
Li, Zongkai
Wang, Meixiao
Gao, Wenli
Wu, Di
Sun, Shuaishuai
Ying, Tianping
Nie, Simin
Li, Yiwei
Schnelle, Walter
Chen, Houke
Zhou, Xingjiang
Koban, Ralf
Chen, Yulin
Yan, Binghai
Yang, Yi-feng
Wu, Weida
Liu, Zhongkai
Felser, Claudia
author_facet Cheng, Erjian
Wang, Kaipu
Hao, Yiqing
Chen, Wenqing
Tan, Hengxin
Li, Zongkai
Wang, Meixiao
Gao, Wenli
Wu, Di
Sun, Shuaishuai
Ying, Tianping
Nie, Simin
Li, Yiwei
Schnelle, Walter
Chen, Houke
Zhou, Xingjiang
Koban, Ralf
Chen, Yulin
Yan, Binghai
Yang, Yi-feng
Wu, Weida
Liu, Zhongkai
Felser, Claudia
contents The discovery of a giant anomalous Hall effect (AHE) and its novel mechanism holds significant promise for advancing both fundamental research and practical applications. Magnetic kagome lattice materials are uniquely suited for studying the AHE due to their interplay between electronic structure, topology, and magnetism. However, the geometric frustration inherent in kagome lattices often limits the configuration and tunability of magnetic order. Here, we present a new design strategy for kagome-lattice materials with emergent magnetism, exemplified by the magnetic kagome metal TbTi$_3$Bi$_4$, which features interwoven magnetic Tb zigzag chains and non-magnetic Ti kagome bilayers. This material exhibits a record-high anomalous Hall conductivity (AHC) of 10$^5$ $Ω^{-1}$ cm$^{-1}$. Spectroscopy measurements reveal a large band folding gap observed via angle-resolved photoemission spectroscopy, coexisting spin-density-wave (SDW) order detected through spin-polarized scanning tunneling spectroscopy, and a spiral magnetic order with large magnetic moments identified by neutron diffraction. These findings highlight a strong electron-magnetic coupling between itinerant charges and ordered magnetic moments, offering a spectroscopic explanation for the giant AHC in TbTi$_3$Bi$_4$. This work establishes a pathway for innovative material design strategies, unlocking new possibilities for future exploration and applications in quantum and spintronic technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2405_16831
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Spectroscopic origin of giant anomalous Hall effect in an interwoven magnetic kagome metal
Cheng, Erjian
Wang, Kaipu
Hao, Yiqing
Chen, Wenqing
Tan, Hengxin
Li, Zongkai
Wang, Meixiao
Gao, Wenli
Wu, Di
Sun, Shuaishuai
Ying, Tianping
Nie, Simin
Li, Yiwei
Schnelle, Walter
Chen, Houke
Zhou, Xingjiang
Koban, Ralf
Chen, Yulin
Yan, Binghai
Yang, Yi-feng
Wu, Weida
Liu, Zhongkai
Felser, Claudia
Strongly Correlated Electrons
The discovery of a giant anomalous Hall effect (AHE) and its novel mechanism holds significant promise for advancing both fundamental research and practical applications. Magnetic kagome lattice materials are uniquely suited for studying the AHE due to their interplay between electronic structure, topology, and magnetism. However, the geometric frustration inherent in kagome lattices often limits the configuration and tunability of magnetic order. Here, we present a new design strategy for kagome-lattice materials with emergent magnetism, exemplified by the magnetic kagome metal TbTi$_3$Bi$_4$, which features interwoven magnetic Tb zigzag chains and non-magnetic Ti kagome bilayers. This material exhibits a record-high anomalous Hall conductivity (AHC) of 10$^5$ $Ω^{-1}$ cm$^{-1}$. Spectroscopy measurements reveal a large band folding gap observed via angle-resolved photoemission spectroscopy, coexisting spin-density-wave (SDW) order detected through spin-polarized scanning tunneling spectroscopy, and a spiral magnetic order with large magnetic moments identified by neutron diffraction. These findings highlight a strong electron-magnetic coupling between itinerant charges and ordered magnetic moments, offering a spectroscopic explanation for the giant AHC in TbTi$_3$Bi$_4$. This work establishes a pathway for innovative material design strategies, unlocking new possibilities for future exploration and applications in quantum and spintronic technologies.
title Spectroscopic origin of giant anomalous Hall effect in an interwoven magnetic kagome metal
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2405.16831