Electronic Flat Band in Distorted Colouring Triangle Lattice

Author:

Li Yaqi12,Zhai Shuwei1,Liu Yani3,Zhang Jingwei12,Meng Ziyuan12,Zhuang Jincheng12,Feng Haifeng12,Xu Xun4,Hao Weichang12,Zhou Miao15,Lu Guang‐Hong16,Dou Shi Xue7,Du Yi12ORCID

Affiliation:

1. School of Physics Beihang University Haidian Beijing 100191 China

2. Centre of Quantum and Matter Sciences International Research Institute for Multidisciplinary Science Beihang University Beijing 100191 China

3. Institute of Physics Chinese Academy of Sciences Beijing 100190 China

4. Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials University of Wollongong Wollongong New South Wales 2500 Australia

5. Beihang Hangzhou Innovation Institute Yuhang Hangzhou 310023 China

6. Beijing Key Laboratory of Advanced Nuclear Materials and Physics Beihang University Beijing 100191 China

7. Institute of Energy Materials Science University of Shanghai for Science and Technology Yangpu Shanghai 200093 China

Abstract

AbstractDispersionless flat bands (FBs) in momentum space, given rise to electron destructive interference in frustrated lattices, offer opportunities to enhance electronic correlations and host exotic many‐body phenomena, such as Wigner crystal, fractional quantum hall state, and superconductivity. Despite successes in theory, great challenges remain in experimentally realizing FBs in frustrated lattices due to thermodynamically structural instability. Here, the observation of electronic FB in a potassium distorted colouring triangle (DCT) lattice is reported, which is supported on a blue phosphorene‐gold network. It is verified that the interaction between potassium and the underlayer dominates and stabilizes the frustrated structures. Two‐dimensional electron gas is modulated by the DCT lattice, and in turn results in a FB dispersion due to destructive quantum interferences. The FB exhibits suppressed bandwidth with high density of states, which is directly observed by scanning tunneling microscopy and confirmed by the first‐principles calculation. This work demonstrates that DCT lattice is a promising platform to study FB physics and explore exotic phenomena of correlation and topological matters.

Funder

Natural Science Foundation of Beijing Municipality

Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Australian Research Council

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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