Subsystem Thermalization Hypothesis in Quantum Spin Chains with Conserved Charges
arXiv:2412.09905 · doi:10.1103/kvn9-s63j
Abstract
We consider the thermalization hypothesis of pure states in quantum Ising chain with symmetry, XXZ chain with symmetry, and XXX chain with symmetries. Two kinds of pure states are considered: the energy eigenstates and the typical states evolved unitarily from the random product states for a long enough period. We further group the typical states by their expectation values of the conserved charges and consider the fine-grained thermalization hypothesis. We compare the locally (subsystem) reduced states of typical states/eigenstates with the ones of the corresponding thermal ensemble states. Besides the usual thermal ensembles such as the (micro-)canonical ensemble without conserved charges and the generalized Gibbs ensemble (GGE) with all conserved charges included, we also consider the so-called partial-GGEs (p-GGEs), which include only part of the conserved charges in the thermal ensemble. Moreover, in the framework of p-GGE, the Hamiltonian and other conserved charges are on an equal footing. The introduction of p-GGEs extends quantum thermalization to a more general scope. The validity of the subsystem thermalization hypothesis can be quantified by the smallness of the relative entropy of the reduced states obtained from the GGE/p-GGE and the typical states/eigenstates. We examine the validity of the thermalization hypothesis by numerically studying the relative entropy demographics. We show that the thermalization hypothesis holds generically for the small enough subsystems for various p-GGEs. Thus, our framework extends the universality of quantum thermalization.
References in corpus (49)
- Thermalization and its mechanism for generic isolated quantum systems
- Many body localization and thermalization in quantum statistical mechanics
- From Quantum Chaos and Eigenstate Thermalization to Statistical Mechanics and Thermodynamics
- Many-body localization, thermalization, and entanglement
- Black holes as mirrors: quantum information in random subsystems
- Quantum thermalization through entanglement in an isolated many-body system
- Fast Scramblers
- The foundations of statistical mechanics from entanglement: Individual states vs. averages
- Relaxation and Pre-thermalization in an Isolated Quantum System
- Equilibration, thermalisation, and the emergence of statistical mechanics in closed quantum systems
- Canonical Typicality
- Experimental Observation of a Generalized Gibbs Ensemble
- Eigenstate Thermalization Hypothesis
- The approach to thermal equilibrium in quantized chaotic systems
- Quantum Many-Body Scars and Weak Breaking of Ergodicity
- Thermalization and prethermalization in isolated quantum systems: a theoretical overview
- Quantum Many-Body Scars and Hilbert Space Fragmentation: A Review of Exact Results
- Onset of quantum chaos in one-dimensional bosonic and fermionic systems and its relation to thermalization
- Effect of Rare Fluctuations on the Thermalization of Isolated Quantum Systems
- Entanglement of Exact Excited States of AKLT Models: Exact Results, Many-Body Scars and the Violation of Strong ETH
- Reduced Density Matrix after a Quantum Quench
- Ergodic dynamics and thermalization in an isolated quantum system
- Proof of the Ergodic Theorem and the H-Theorem in Quantum Mechanics
- Quantum Many-Body Scars: A Quasiparticle Perspective
- What is an integrable quench?
- Microwave-engineering of programmable XXZ Hamiltonians in arrays of Rydberg atoms
- Canonical Typicality of Energy Eigenstates of an Isolated Quantum System
- Subsystem ETH
- Microcanonical and resource-theoretic derivations of the thermal state of a quantum system with noncommuting charges
- Thermodynamics of quantum systems with multiple conserved quantities
- Many-Body Localization in the Age of Classical Computing
- Time-resolved observation of thermalization in an isolated quantum system
- Fluctuation Theorem for Many-Body Pure Quantum States
- Thermalization and canonical typicality in translation-invariant quantum lattice systems
- On thermality of CFT eigenstates
- Generalized Eigenstate Thermalization in 2d CFTs
- Non-Abelian eigenstate thermalization hypothesis
- Noncommuting conserved quantities in quantum many-body thermalization
- Noncommuting conserved charges in quantum thermodynamics and beyond
- Subsystem eigenstate thermalization hypothesis for entanglement entropy in CFT
- Dissimilarities of reduced density matrices and eigenstate thermalization hypothesis
- Non-Abelian symmetries and disorder: a broad non-ergodic regime and anomalous thermalization
- On Truncated Generalized Gibbs Ensembles in the Ising Field Theory
- Non-Abelian transport distinguishes three usually equivalent notions of entropy production
- Note on ETH of descendant states in 2D CFT
- Noncommutative generalized Gibbs ensemble in isolated integrable quantum systems
- Entanglement scaling at first order phase transitions
- Generalized thermalization for integrable system under quantum quench
- Subsystem entropy in 2d CFT and KdV ETH