Asymmetric decay of quantum many-body scars in XYZ quantum spin chains
Dhiman Bhowmick, Vir B. Bulchandani, Wen Wei Ho

TL;DR
This paper reveals that quantum many-body scars in XYZ spin chains exhibit asymmetric decay under perturbations, with decay rates depending on the perturbation's sign, supported by analytical and numerical evidence.
Contribution
It identifies a family of quantum many-body scars in XYZ chains, analyzes their semiclassical limit, and predicts asymmetric decay behavior under perturbations.
Findings
Scars are highly excited, nonentangled eigenstates forming periodic textures.
Decay asymmetry depends on the perturbation sign, with linear or exponential decay.
Numerical simulations confirm the analytical predictions even away from the semiclassical limit.
Abstract
Quantum many-body scars are atypical energy eigenstates of chaotic quantum many-body systems that prevent certain special non-equilibrium initial conditions from thermalizing. We point out that quantum many-body scars exist for any nearest-neighbor spin- XYZ quantum spin chain, and arise in the form of an infinite family of highly excited yet nonentangled product-state eigenstates, which define periodic textures in spin space. This set of scars, discovered originally by Granovskii and Zhedanov in 1985, encompasses both the experimentally relevant 'spin helices' for XXZ chains and more complicated helix-like states constructed from Jacobi elliptic functions for generic XYZ chains. An appealing feature of Granovskii-Zhedanov scars is that they are well-defined in the semiclassical limit , which allows for a systematic and analytical treatment of their dynamical…
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Taxonomy
TopicsQuantum many-body systems · Quantum chaos and dynamical systems · Topological Materials and Phenomena
