Atomic perspective on the topological magnetism in kagome metal Co3Sn2S2

Fuente: arXiv
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Autori principali: Liu, Guowei, Song, Wei, Neupert, Titus, Hasan, M. Zahid, Deng, Hanbin, Yin, Jia-Xin
Natura: Preprint
Pubblicazione: 2025
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author Liu, Guowei
Song, Wei
Neupert, Titus
Hasan, M. Zahid
Deng, Hanbin
Yin, Jia-Xin
author_facet Liu, Guowei
Song, Wei
Neupert, Titus
Hasan, M. Zahid
Deng, Hanbin
Yin, Jia-Xin
contents Topological quantum materials with kagome lattices have attracted intense interest due to their unconventional electronic structures, which exhibit nontrivial topology, anomalous magnetism, and electronic correlations. Among these, Co3Sn2S2 stands out as a prototypical kagome metal, uniquely combining intrinsic ferromagnetism with topologically nontrivial electronic states. This perspective presents a systematic overview of recent advances in studying kagome metal Co3Sn2S2 achieved through scanning tunneling microscopy. We begin by introducing different methodologies for surface identification and propose using designer layer-selective chemical markers for conclusive surface identification. We then discuss the Berry curvature induced flat band orbital magnetism and the associated unconventional Zeeman effect. Furthermore, we explore boundary states arising from Weyl topology and analyze challenges in detecting Fermi arcs via quasiparticle interference patterns and in uncovering the topological aspect of the edge states. Finally, we review recent observations of spin-orbit-coupled quantum impurity states through spin-polarized tunneling spectroscopy, as well as their connection to Weyl topology and flat band magnetism. We also provide in-depth analysis and constructive comments on the limitations of the current research approach. This review highlights the critical role of scanning tunneling microscopy in unraveling the intricate interplay between topology, magnetism, and correlations at the atomic scale, and the methodology discussed here can be applied to study other topological quantum materials in general.
format Preprint
id arxiv_https___arxiv_org_abs_2508_11140
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Atomic perspective on the topological magnetism in kagome metal Co3Sn2S2
Liu, Guowei
Song, Wei
Neupert, Titus
Hasan, M. Zahid
Deng, Hanbin
Yin, Jia-Xin
Strongly Correlated Electrons
Materials Science
Topological quantum materials with kagome lattices have attracted intense interest due to their unconventional electronic structures, which exhibit nontrivial topology, anomalous magnetism, and electronic correlations. Among these, Co3Sn2S2 stands out as a prototypical kagome metal, uniquely combining intrinsic ferromagnetism with topologically nontrivial electronic states. This perspective presents a systematic overview of recent advances in studying kagome metal Co3Sn2S2 achieved through scanning tunneling microscopy. We begin by introducing different methodologies for surface identification and propose using designer layer-selective chemical markers for conclusive surface identification. We then discuss the Berry curvature induced flat band orbital magnetism and the associated unconventional Zeeman effect. Furthermore, we explore boundary states arising from Weyl topology and analyze challenges in detecting Fermi arcs via quasiparticle interference patterns and in uncovering the topological aspect of the edge states. Finally, we review recent observations of spin-orbit-coupled quantum impurity states through spin-polarized tunneling spectroscopy, as well as their connection to Weyl topology and flat band magnetism. We also provide in-depth analysis and constructive comments on the limitations of the current research approach. This review highlights the critical role of scanning tunneling microscopy in unraveling the intricate interplay between topology, magnetism, and correlations at the atomic scale, and the methodology discussed here can be applied to study other topological quantum materials in general.
title Atomic perspective on the topological magnetism in kagome metal Co3Sn2S2
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2508.11140