Back to Search Start Over

Giant and anisotropic many-body spin-orbit tunability in a strongly correlated kagome magnet

Authors :
Hsin Lin
Biao Lian
Jiaxin Yin
Tyler A. Cochran
Kun Jiang
M. Zahid Hasan
Z. Y. Lu
Hao Zheng
Tay-Rong Chang
Ilya Belopolski
Hang Li
Cheng Xiang
Shuang Jia
Wen-Hong Wang
Bing-Jing Zhang
Kai Liu
Ziqiang Wang
Guoqing Chang
Songtian S. Zhang
Guang Bian
Su-Yang Xu
Publication Year :
2018
Publisher :
arXiv, 2018.

Abstract

Owing to the unusual geometry of kagome lattices-lattices made of corner-sharing triangles-their electrons are useful for studying the physics of frustrated, correlated and topological quantum electronic states. In the presence of strong spin-orbit coupling, the magnetic and electronic structures of kagome lattices are further entangled, which can lead to hitherto unknown spin-orbit phenomena. Here we use a combination of vector-magnetic-field capability and scanning tunnelling microscopy to elucidate the spin-orbit nature of the kagome ferromagnet Fe3Sn2 and explore the associated exotic correlated phenomena. We discover that a many-body electronic state from the kagome lattice couples strongly to the vector field with three-dimensional anisotropy, exhibiting a magnetization-driven giant nematic (two-fold-symmetric) energy shift. Probing the fermionic quasi-particle interference reveals consistent spontaneous nematicity-a clear indication of electron correlation-and vector magnetization is capable of altering this state, thus controlling the many-body electronic symmetry. These spin-driven giant electronic responses go well beyond Zeeman physics and point to the realization of an underlying correlated magnetic topological phase. The tunability of this kagome magnet reveals a strong interplay between an externally applied field, electronic excitations and nematicity, providing new ways of controlling spin-orbit properties and exploring emergent phenomena in topological or quantum materials.<br />Comment: Nature, online (2018)

Details

Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....99a45b4c26a53a1c3d6bfd234560311b
Full Text :
https://doi.org/10.48550/arxiv.1810.00218