Wigner Crystallization in Topological Flat Bands

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Date

2018

Journal Title

Journal ISSN

Volume Title

Publisher

IOP Publishing Ltd.

Open Access Color

GOLD

Green Open Access

Yes

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No
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Top 10%
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Average
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Top 10%

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Abstract

We study the Wigner crystallization on partially filled topological flat bands of kagome, honeycomb and checkerboard lattices. We identify the Wigner crystals (WCs) by analyzing the Cartesian and angular Fourier transform of the pair correlation density of the many-body ground state obtained using exact diagonalization. The crystallization strength, measured by the magnitude of the Fourier peaks, increases with decreasing particle density. The Wigner crystallization observed by us is a robust and general phenomenon, existing in all three lattice models for a broad range of filling factors and interaction parameters. The shape of the resulting WCs is determined by the boundary conditions of the chosen plaquette. It is to a large extent independent on the underlying lattice, including its topology, and follows the behavior of classical point particles.

Description

Keywords

Charge order, Fractional Chern insulators, Long-range interactions, Topological flat bands, Wigner crystal, Strongly Correlated Electrons (cond-mat.str-el), Science, Physics, QC1-999, topological flat bands, Q, FOS: Physical sciences, Charge order, fractional Chern insulators, Long-range interactions, Topological flat bands, Condensed Matter - Strongly Correlated Electrons, Fractional Chern insulators, Wigner crystal, long-range interactions, charge order

Fields of Science

01 natural sciences, 0103 physical sciences

Citation

Jaworowski, B., Güçlü, A. D., Kaczmarkiewicz, P., Kupczyński, M., Potasz, P., and Wójs, A. (2018). Wigner crystallization in topological flat bands. New Journal of Physics, 20(6). doi:10.1088/1367-2630/aac690

WoS Q

Q2

Scopus Q

Q1
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OpenCitations Citation Count
25

Source

New Journal of Physics

Volume

20

Issue

6

Start Page

End Page

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Citations

CrossRef : 3

Scopus : 31

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Mendeley Readers : 19

SCOPUS™ Citations

31

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Web of Science™ Citations

29

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Page Views

1140

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Downloads

470

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