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Non-Hermitian topological Mott insulators in one-dimensional fermionic superlattices

Tao Liu, James Jun He, Tsuneya Yoshida, Ze-Liang Xiang, and Franco Nori
Phys. Rev. B 102, 235151 – Published 23 December 2020

Abstract

We study interaction-induced Mott insulators, and their topological properties in a one-dimensional non-Hermitian strongly correlated spinful fermionic superlattice system with either nonreciprocal hopping or complex-valued interaction. For the nonreciprocal hopping case, the low-energy neutral excitation spectrum is sensitive to boundary conditions, which is a manifestation of the non-Hermitian skin effect. However, unlike the single-particle case, particle density of strongly correlated system does not suffer from the non-Hermitian skin effect due to the Pauli exclusion principle and repulsive interactions. Moreover, the anomalous boundary effect occurs due to the interplay of nonreciprocal hopping, superlattice potential, and strong correlations, where some in-gap modes, for both the neutral and charge excitation spectra, show no edge excitations defined via only the right eigenvectors. We show that these edge excitations of the in-gap states can be correctly characterized by only biorthogonal eigenvectors. Furthermore, the topological Mott phase, with gapless particle excitations around boundaries, exists even for the purely imaginary-valued interaction, where the continuous quantum Zeno effect leads to the effective on-site repulsion between two-component fermions.

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  • Received 27 January 2020
  • Revised 6 December 2020
  • Accepted 9 December 2020

DOI:https://doi.org/10.1103/PhysRevB.102.235151

©2020 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Tao Liu1,2,*, James Jun He3, Tsuneya Yoshida4,5, Ze-Liang Xiang6, and Franco Nori1,7,†

  • 1Theoretical Quantum Physics Laboratory, RIKEN Cluster for Pioneering Research, Wako-shi, Saitama 351-0198, Japan
  • 2School of Physics and Optoelectronics, South China University of Technology, Guangzhou 510640, China
  • 3RIKEN Center for Emergent Matter Science, Wako, Saitama 351-0198, Japan
  • 4Graduate School of Pure and Applied Sciences, University of Tsukuba, Tsukuba, Ibaraki 305-8571, Japan
  • 5Department of Physics, University of Tsukuba, Tsukuba, Ibaraki 305-8571, Japan
  • 6School of Physics, Sun Yat-sen University, Guangzhou 510275, China
  • 7Department of Physics, University of Michigan, Ann Arbor, Michigan 48109-1040, USA

  • *tao.liu@riken.jp
  • fnori@riken.jp

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Issue

Vol. 102, Iss. 23 — 15 December 2020

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