| Literature DB >> 32699400 |
Jia-Xin Yin1, Wenlong Ma2, Tyler A Cochran3, Xitong Xu2, Songtian S Zhang3, Hung-Ju Tien4, Nana Shumiya3, Guangming Cheng5, Kun Jiang6, Biao Lian7, Zhida Song8, Guoqing Chang3, Ilya Belopolski3, Daniel Multer3, Maksim Litskevich3, Zi-Jia Cheng3, Xian P Yang3, Bianca Swidler3, Huibin Zhou2, Hsin Lin9, Titus Neupert10, Ziqiang Wang6, Nan Yao5, Tay-Rong Chang4,11,12, Shuang Jia13,14,15, M Zahid Hasan16,17.
Abstract
The quantum-level interplay between geometry, topology and correlation is at the forefront of fundamental physics1-15. Kagome magnets are predicted to support intrinsic Chern quantum phases owing to their unusual lattice geometry and breaking of time-reversal symmetry14,15. However, quantum materials hosting ideal spin-orbit-coupled kagome lattices with strong out-of-plane magnetization are lacking16-21. Here, using scanning tunnelling microscopy, we identify a new topological kagome magnet, TbMn6Sn6, that is close to satisfying these criteria. We visualize its effectively defect-free, purely manganese-based ferromagnetic kagome lattice with atomic resolution. Remarkably, its electronic state shows distinct Landau quantization on application of a magnetic field, and the quantized Landau fan structure features spin-polarized Dirac dispersion with a large Chern gap. We further demonstrate the bulk-boundary correspondence between the Chern gap and the topological edge state, as well as the Berry curvature field correspondence of Chern gapped Dirac fermions. Our results point to the realization of a quantum-limit Chern phase in TbMn6Sn6, and may enable the observation of topological quantum phenomena in the RMn6Sn6 (where R is a rare earth element) family with a variety of magnetic structures. Our visualization of the magnetic bulk-boundary-Berry correspondence covering real space and momentum space demonstrates a proof-of-principle method for revealing topological magnets.Entities:
Year: 2020 PMID: 32699400 DOI: 10.1038/s41586-020-2482-7
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962