Direct observation of topological surface states in the layered kagome lattice with broken time-reversal symmetry
Zhicheng Jiang, Tongrui Li, Jian Yuan, Zhengtai Liu, Zhipeng Cao,, Soohyun Cho, Mingfang Shu, Yichen Yang, Jianyang Ding, Zhikai Li, Jiayu Liu,, Zhonghao Liu, Jishan Liu, Jie Ma, Zhe Sun, Yanfeng Guo, Dawei Shen

TL;DR
This study reports the experimental observation of topological surface states in a magnetic kagome lattice compound EuTi3Bi4, revealing how magnetic order influences topological properties and surface states.
Contribution
The paper synthesizes and characterizes a new magnetic kagome material EuTi3Bi4, demonstrating the existence of topological surface states stabilized by magnetic order and symmetry considerations.
Findings
Identification of topological nontrivial surface states
Observation of anisotropic Van Hove singularities
Role of effective time-reversal symmetry in stability
Abstract
Magnetic topological quantum materials display a diverse range of fascinating physical properties which arise from their intrinsic magnetism and the breaking of time-reversal symmetry. However, so far, few examples of intrinsic magnetic topological materials have been confirmed experimentally, which significantly hinder our comprehensive understanding of the abundant physical properties in this system. The kagome lattices, which host diversity of electronic structure signatures such as Dirac nodes, flat bands, and saddle points, provide an alternative and promising platform for in-depth investigations into correlations and band topology. In this article, drawing inspiration from the stacking configuration of MnBiTe, we conceive and then synthesize a high-quality single crystal EuTiBi, which is a unique natural heterostructure consisting of both topological kagome layers…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Condensed Matter Physics · Quantum, superfluid, helium dynamics
