From Ergodicity to Many-Body Localization in a One-Dimensional Interacting Non-Hermitian Stark System
Jinghu Liu, Zhihao Xu

TL;DR
This paper investigates phase transitions, including many-body localization, in a non-Hermitian one-dimensional Stark system, revealing boundary-dependent properties and robustness of Stark MBL akin to disorder-induced MBL.
Contribution
It demonstrates the existence and robustness of non-Hermitian Stark MBL in a disorder-free system and explores its relation to eigenvalue transitions and boundary conditions.
Findings
Real-complex eigenvalue transition coincides with a spectral transition.
Non-Hermitian Stark MBL is robust and similar to disorder-induced MBL.
Boundary conditions affect the real-complex transition but not the MBL transition.
Abstract
Recent studies on disorder-induced many-body localization (MBL) in non-Hermitian quantum systems have attracted great interest. However, the non-Hermitian disorder-free MBL still needs to be clarified. We consider a one-dimensional interacting Stark model with nonreciprocal hoppings having time-reversal symmetry, the properties of which are boundary dependent. Under periodic boundary conditions (PBCs), such a model exhibits three types of phase transitions: the real-complex transition of eigenenergies, the topological phase transition, and the non-Hermitian Stark MBL transition. The real-complex and topological phase transitions occur at the same point in the thermodynamic limit but do not coincide with the non-Hermitian Stark MBL transition, which is quite different from the non-Hermitian disordered cases. By the level statistics, the system transitions from the Ginibre ensemble (GE)…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Quantum Mechanics and Non-Hermitian Physics · Spectroscopy and Quantum Chemical Studies
