Many-Body Localization and Thermalization in Quantum Statistical Mechanics
Локализация многих тел и термализация в квантовой статистической механике
2015-03-01
SCID: 54.1/69cgfpdr
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eigenstate thermalization hypothesismany-body localizationquantum statistical mechanicsquantum thermalizationsingle-eigenstate statistical mechanics
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Abstract (AI)
We review some recent developments in the statistical mechanics of isolated quantum systems. We provide a brief introduction to quantum thermalization, paying particular attention to the eigenstate thermalization hypothesis (ETH) and the resulting single-eigenstate statistical mechanics. We then focus on a class of systems that fail to quantum thermalize and whose eigenstates violate the ETH: These are the many-body Anderson-localized systems; their long-time properties are not captured by the conventional ensembles of quantum statistical mechanics. These systems can forever locally remember information about their local initial conditions and are thus of interest for possibilities of storing quantum information. We discuss key features of many-body localization (MBL) and review a phenomenology of the MBL phase. Single-eigenstate statistical mechanics within the MBL phase reveal dynamically stable ordered phases, and phase transitions among them, that are invisible to equilibrium statistical mechanics and can occur at high energy and low spatial dimensionality, where equilibrium ordering is forbidden.
Key Findings
1
MBL-related phase transitions can occur at high energy and in low spatial dimensions, where equilibrium statistical mechanics forbids ordering.
2
Many-body Anderson-localized systems fail to quantum thermalize because their eigenstates violate the eigenstate thermalization hypothesis (ETH).
3
Many-body localized systems can retain local information about their initial conditions indefinitely, suggesting potential applications for quantum-information storage.
4
Single-eigenstate statistical mechanics in the MBL phase supports dynamically stable ordered phases and transitions between them.
5
The long-time behavior of many-body localized systems is not described by conventional quantum statistical ensembles.
Research Object
many-body Anderson-localized quantum systems (many-body localized systems)
Research Subject
their failure to thermalize, violation of the eigenstate thermalization hypothesis, long-time memory of local initial conditions, and dynamically stable ordered phases and phase transitions
Publication Details
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2015-03-01
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