Gate-tunable large second-order and third-order nonlinear Hall effect in topological insulator BiSbTeSe 2

The nonlinear Hall effect (NLHE) holds significant promise for next-generation electronic device applications, and it is essential to explore and engineer a strong and highly tunable NLHE. In this work, we report large second-order and third-order NLHEs in dual-gated BiSbTeSe2 devices. Both the second-order and third-order NLHE are highly gate-tunable. The second-order NLHE exhibits a higher generation efficiency than those reported in previous topological insulator systems, and it can be stably observed up to room temperature. Meanwhile, the generation efficiency of the third-order NLHE is comparable to previously reported values. The scaling analysis indicates that the second-order NLHE is consistent with contributions from skew scattering and a term compatible with either the Berry curvature dipole or side jump, whereas the third-order NLHE is consistent with contributions from the Berry connection polarizability tensor and higher-order skew scattering. Our work establishes a promising experimental platform for the development of NLHE-based devices.

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Publication Details

Journal
Physical Review Materials
Published
2026-10-08
DOI
https://doi.org/10.1103/y55k-pvgq
Primary Topic
Topological Materials and Phenomena
Type
article
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article

Gate-tunable large second-order and third-order nonlinear Hall effect in topological insulator BiSbTeSe 2

Yufan Ju, Fengyi Guo, Zhe Ying, Fengqi Song et al.
Physical Review Materials
Topological Materials and Phenomena
article

Gate-tunable large second-order and third-order nonlinear Hall effect in topological insulator BiSbTeSe 2

Yufan Ju, Fengyi Guo, Zhe Ying, Fengqi Song, Zheng Dai, Xiubing Li, Ziqi Wang, Shuai Zhang, Cheng Bin, Congcong Li
article en

Abstract

The nonlinear Hall effect (NLHE) holds significant promise for next-generation electronic device applications, and it is essential to explore and engineer a strong and highly tunable NLHE. In this work, we report large second-order and third-order NLHEs in dual-gated BiSbTeSe2 devices. Both the second-order and third-order NLHE are highly gate-tunable. The second-order NLHE exhibits a higher generation efficiency than those reported in previous topological insulator systems, and it can be stably observed up to room temperature. Meanwhile, the generation efficiency of the third-order NLHE is comparable to previously reported values. The scaling analysis indicates that the second-order NLHE is consistent with contributions from skew scattering and a term compatible with either the Berry curvature dipole or side jump, whereas the third-order NLHE is consistent with contributions from the Berry connection polarizability tensor and higher-order skew scattering. Our work establishes a promising experimental platform for the development of NLHE-based devices.

Physical Review MaterialsVol. 10(10)
Jiangsu Second Normal University (CN), Nanjing University (CN)
Openalex Percentile: Top 20%
Topological Materials and Phenomena
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