Beyond many-body localized states in a spin-disordered Hubbard model

Xiongjie Yu, Di Luo, and Bryan K. Clark
Phys. Rev. B 98, 115106 – Published 5 September 2018

Abstract

A prime characterization of many-body localized (MBL) systems is the entanglement of their eigenstates; in contrast to the typical ergodic phase whose eigenstates are volume law, MBL eigenstates obey an area law. In this paper, we show that a spin-disordered Hubbard model has both a large number of area-law eigenstates as well as a large number of eigenstates whose entanglement scales logarithmically with system size (log-law). This model provides a microscopic Hamiltonian which is neither ergodic nor MBL. We establish these results through a combination of analytic arguments based on the eta-pairing operators combined with a numerical analysis of eigenstates. In addition, we describe and simulate a dynamic time evolution approach starting from product states through which one can separately probe the area-law and log-law eigenstates in this system.

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  • Received 16 March 2018

DOI:https://doi.org/10.1103/PhysRevB.98.115106

©2018 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Xiongjie Yu, Di Luo, and Bryan K. Clark

  • Institute for Condensed Matter Theory and Department of Physics, University of Illinois at Urbana-Champaign, Illinois 61801, USA

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Issue

Vol. 98, Iss. 11 — 15 September 2018

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