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  5. Self-Intercalated 1T-FeSe<sub>2</sub> as an Effective Kagome Lattice

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Article
en
2023

Self-Intercalated 1T-FeSe<sub>2</sub> as an Effective Kagome Lattice

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en
2023
Vol 23 (3)
Vol. 23
DOI: 10.1021/acs.nanolett.2c04362

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Lin Gu
Lin Gu

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Zhimo Zhang
Ben‐Chao Gong
Jin‐Hua Nie
+7 more

Abstract

In kagome lattice, with the emergence of Dirac cones and flat band in electronic structure, it provides a versatile ground for exploring intriguing interplay among frustrated geometry, topology and correlation. However, such engaging interest is strongly limited by available kagome materials in nature. Here we report on a synthetic strategy of constructing kagome systems via self-intercalation of Fe atoms into the van der Waals gap of FeSe2 via molecular beam epitaxy. Using low-temperature scanning tunneling microscopy, we unveil a kagome-like morphology upon intercalating a 2 × 2 ordered Fe atoms, resulting in a stoichiometry of Fe5Se8. Both the bias-dependent STM imaging and theoretical modeling calculations suggest that the kagome pattern mainly originates from slight but important reconstruction of topmost Se atoms, incurred by the nonequivalent subsurface Fe sites due to the intercalation. Our study demonstrates an alternative approach of constructing artificial kagome structures, which envisions to be tuned for exploring correlated quantum states.

How to cite this publication

Zhimo Zhang, Ben‐Chao Gong, Jin‐Hua Nie, Fanqi Meng, Qinghua Zhang, Lin Gu, Kai Liu, Zhong-Yi Lu, Ying‐Shuang Fu, Wenhao Zhang (2023). Self-Intercalated 1T-FeSe<sub>2</sub> as an Effective Kagome Lattice. , 23(3), DOI: https://doi.org/10.1021/acs.nanolett.2c04362.

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Publication Details

Type

Article

Year

2023

Authors

10

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1021/acs.nanolett.2c04362

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