Many-Body Localization and Level Repulsion
arXiv:1710.09751 · doi:10.1103/PhysRevB.97.035163
Abstract
Insertion of disorder in thermal interacting quantum systems decreases the amount of level repulsion and can turn them into many body localized phases. In this paper we use the many body picture to perturbatively study the effect of level repulsion in the localized phase. We find that most eigenstates can be described accurately in an approximate way, including many with rare resonances. A classification of the rare resonances shows that most types are exponentially rare and requires exponential fine tuning in an approximate description. The classification confirms that no rare thermal eigenstates can exist in a fully localized phase and we argue that all types of resonances need to become common if a continuous transition into a thermal phase should occur.
7 pages, 10 figures, published version
References in corpus (4)
Cited by in corpus (15)
- Thouless time analysis of Anderson and many-body localization transitions
- Many-Body Localization in the Age of Classical Computing
- Model of level statistics for disordered interacting quantum many-body systems
- Random Matrix Ensemble for the Level Statistics of Many-Body Localization
- Multiscale entanglement clusters at the many-body localization phase transition
- Higher order spacing ratios in random matrix theory and complex quantum systems
- Stability of many-body localization in Floquet systems
- Universality in Anderson localization on random graphs with varying connectivity
- Many-Body Mobility Edge in Quantum Sun models
- Information-Theoretic Memory Scaling in the Many-Body Localization Transition
- Statistics of systemwide correlations in the random-field XXZ chain: Importance of rare events in the many-body localized phase
- Cat states carrying long-range correlations in the many-body localized phase
- Dynamics of quantum coherence in many-body localized systems
- Long-range resonances in quasiperiodic many-body localization
- Large deviations in the many-body localization transition: The case of the random-field XXZ chain