Deep thermalization in constrained quantum systems
arXiv:2307.03769 · doi:10.1103/PhysRevB.108.104317
Abstract
The concept of "deep thermalization" has recently been introduced to characterize moments of an ensemble of pure states, resulting from projective measurements on a subsystem, which lie beyond the purview of conventional Eigenstate Thermalization Hypothesis (ETH). In this work, we study deep thermalization in systems with kinetic constraints, such as the quantum East and the PXP models, which have been known to weakly break ETH by the slow dynamics and high sensitivity to the initial conditions. We demonstrate a sharp contrast in deep thermalization between the first and higher moments in these models by studying quench dynamics from initial product states in the computational basis: while the first moment shows good agreement with ETH, higher moments deviate from the uniform Haar ensemble at infinite temperature. We show that such behavior is caused by an interplay of time-reversal symmetry and an operator that anticommutes with the Hamiltonian. We formulate sufficient conditions for violating deep thermalization, even for systems that are otherwise "thermal" in the ETH sense. By appropriately breaking these properties, we illustrate how the PXP model fully deep-thermalizes for all initial product states in the thermodynamic limit. Our results highlight the sensitivity of deep thermalization as a probe of physics beyond ETH in kinetically-constrained systems.
PRB published version, additional information on Fig.(12) and additional comments on the Haar ensemble in Section II.A
References in corpus (18)
- Thermalization and its mechanism for generic isolated quantum systems
- Probing many-body dynamics on a 51-atom quantum simulator
- Many body localization and thermalization in quantum statistical mechanics
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Controlling many-body dynamics with driven quantum scars in Rydberg atom arrays
- Interacting anyons in topological quantum liquids: The golden chain
- Emergent SU(2) dynamics and perfect quantum many-body scars
- Competing density-wave orders in a one-dimensional hard-boson model
- Localizable Entanglement
- Quantum Many-Body Scars: A Quasiparticle Perspective
- Observation of many-body scarring in a Bose--Hubbard quantum simulator
- Eigenstate Thermalization Hypothesis and Free Probability
- Dynamical purification and the emergence of quantum state designs from the projected ensemble
- Generalized Deep Thermalization for Free Fermions
- Superdiffusive Energy Transport in Kinetically Constrained Models
- Kinetically Constrained Quantum Dynamics in Superconducting Circuits
- Hypergrid subgraphs and the origin of scarred quantum walks in the many-body Hilbert space
- Extreme many-body scarring in a quantum spin chain via weak dynamical constraints
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- Deep thermalization in Gaussian continuous-variable quantum systems
- Optimal Conversion from Classical to Quantum Randomness via Quantum Chaos
- Holographic deep thermalization for secure and efficient quantum random state generation
- Dynamics of spin-momentum entanglement from superradiant phase transitions
- Projected ensemble in a system with conserved charges with local support
- Prethermalization in the PXP Model under Continuous Quasiperiodic Driving
- Emergent unitary designs for encoded qubits from coherent errors and syndrome measurements
- Matchgate circuits deeply thermalize
- State-dependent mobility edge in kinetically constrained models
- On Computational Complexity of Unitary and State Design Properties
- Partial projected ensembles and spatiotemporal structure of information scrambling
- Information phases of partial projected ensembles generated from random quantum states and scrambling dynamics
- Symmetry Properties of Quantum Dynamical Entropy
- Signatures of quantum chaos and complexity in the Ising model on random graphs
- Coherence-induced deep thermalization transition in random permutation quantum dynamics
- Diagnosing chaos with projected ensembles of process tensors
- Do mixed states exhibit deep thermalisation?