DOI: 10.1021/acs.nanolett.6c02890 ISSN: 1530-6984

Probing the Anomalous Symmetry Breaking in Kagome Material CsV3Sb5 via Third-Order Nonlinearity

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

Abstract

The kagome material has rapidly established itself as a research frontier in condensed matter physics, owing to its distinctive geometric structure and the rich array of unconventional physical phenomena. In the kagome AV3Sb5 (A = K, Rb, and Cs) family, the charge-ordered state exhibits a remarkable characteristic, i.e., anomalous symmetry breaking, which is tied to the topological nature of the electronic band structure. Here, we report the third-order nonlinear longitudinal and Hall responses that persist stably up to room temperature in the kagome material CsV3Sb5. Notably, the nonlinear responses demonstrate significant transition below the charge density wave (∼77 K) order and anomalous symmetry-breaking (∼39 K) state. The scaling analysis indicates that the third-order nonlinear transport is governed jointly by the quantum geometric contribution and extrinsic scattering. This study advances the understanding of the third-order nonlinear transport and provides a distinct method to detect anomalous symmetry breaking in CsV3Sb5.