Eigenstate thermalization and quantum chaos in the Holstein polaron model
arXiv:1902.03247 · doi:10.1103/PhysRevB.99.155130
Abstract
The eigenstate thermalization hypothesis (ETH) is a successful theory that provides sufficient criteria for ergodicity in quantum many-body systems. Most studies were carried out for Hamiltonians relevant for ultracold quantum gases and single-component systems of spins, fermions, or bosons. The paradigmatic example for thermalization in solid-state physics are phonons serving as a bath for electrons. This situation is often viewed from an open-quantum system perspective. Here, we ask whether a minimal microscopic model for electron-phonon coupling is quantum chaotic and whether it obeys ETH, if viewed as a closed quantum system. Using exact diagonalization, we address this question in the framework of the Holstein polaron model. Even though the model describes only a single itinerant electron, whose coupling to dispersionless phonons is the only integrability-breaking term, we find that the spectral statistics and the structure of Hamiltonian eigenstates exhibit essential properties of the corresponding random-matrix ensemble. Moreover, we verify the ETH ansatz both for diagonal and offdiagonal matrix elements of typical phonon and electron observables, and show that the ratio of their variances equals the value predicted from random-matrix theory.
13 pages, 11 figures, as published
References in corpus (30)
- Many-Body Physics with Ultracold Gases
- The density-matrix renormalization group in the age of matrix product states
- Thermalization and its mechanism for generic isolated quantum systems
- Localization of interacting fermions at high temperature
- The distribution of the ratio of consecutive level spacings in random matrix ensembles
- Experimental Observation of a Generalized Gibbs Ensemble
- Breakdown of thermalization in finite one-dimensional systems
- Testing whether all eigenstates obey the Eigenstate Thermalization Hypothesis
- Ultracold atoms out of equilibrium
- Anomalous thermalization in ergodic systems
- Off-diagonal matrix elements of local operators in many-body quantum systems
- Long-Time Behavior of Macroscopic Quantum Systems: Commentary Accompanying the English Translation of John von Neumann's 1929 Article on the Quantum Ergodic Theorem
- Eigenstate thermalization within isolated spin-chain systems
- Entanglement Entropy of Eigenstates of Quantum Chaotic Hamiltonians
- Quantum chaos and thermalization in gapped systems
- Relaxation and thermalization in the one-dimensional Bose-Hubbard model: A case study for the interaction quantum quench from the atomic limit
- Time-dependent variational principle in matrix-product state manifolds: pitfalls and potential
- Nonequilibrium dynamics of the Holstein polaron driven by external electric field
- Relaxation dynamics of the Holstein polaron
- Interaction quench in the Holstein model: Thermalization crossover from electron- to phonon-dominated relaxation
- Real-time decay of a highly excited charge carrier in the one-dimensional Holstein model
- Field-induced polaron formation in the Holstein-Hubbard model
- Relevance of the eigenstate thermalization hypothesis for thermal relaxation
- Simulating generic spin-boson models with matrix product states
- Charges and currents in quantum spin chains: late-time dynamics and spontaneous currents
- Incoherent transport induced by a single static impurity in a Heisenberg chain
- The eigenstate thermalization hypothesis in constrained Hilbert spaces: a case study in non-Abelian anyon chains
- Eigenstate thermalization hypothesis in quantum dimer models
- Random-matrix behavior of quantum nonintegrable many-body systems with Dyson's three symmetries
- Nature of Bosonic Excitations revealed by high-energy charge carriers
Cited by in corpus (6)
- Low-frequency behavior of off-diagonal matrix elements in the integrable XXZ chain and in a locally perturbed quantum-chaotic XXZ chain
- Quantum quench dynamics in the transverse-field Ising model: A numerical expansion in linked rectangular clusters
- Eigenstate thermalization scaling in approaching the classical limit
- Modification of quantum many-body relaxation by perturbations exhibiting a banded matrix structure
- Spectral Function of an Electron Coupled to Hard Core Bosons
- Persistent many-body quantum echoes