Robustness of Stark many-body localization in the $J_1$-$J_2$ Heisenberg model
E. Vernek

TL;DR
This paper investigates Stark many-body localization in a Heisenberg spin chain with next-nearest-neighbor interactions, revealing that SMBL is robust and can be enhanced by tuning coupling, even without disorder.
Contribution
It demonstrates the robustness of SMBL in a Heisenberg model with next-nearest-neighbor coupling and shows how this coupling can enhance localization.
Findings
Localization persists with next-nearest-neighbor coupling.
Tuning coupling enhances SMBL at smaller field gradients.
Finite-size effects influence localization and thermalization observations.
Abstract
Stark many-body localization (SMBL) is a phenomenon observed in interacting systems with a nearly uniform spatial gradient applied field. Contrasting to the traditional many-body localization phenomenon, SMBL does not require disorder. Here we investigate SMBL in a spin- described by a Heisenberg model including a next-nearest-neighbor exchange coupling. By employing an exact diagonalization approach and time evolution calculation we analyze both level spacing ratio (LSR) statistics of the Hamiltonian model as well as the dynamics of the system from a given initial state. Our results reveals that for zero field in our finite system, LSR statistics suggest localization while the dynamics shows thermalization, which has been attributed to a finite-size effect. Slightly nonuniform field gradient, LSR statistic predictions agree very well with the dynamics of the physical quantities…
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Taxonomy
TopicsTheoretical and Computational Physics · Quantum many-body systems · Complex Systems and Time Series Analysis
