Equilibration, thermalisation, and the emergence of statistical mechanics in closed quantum systems
Установление равновесия, термализация и возникновение статистической механики в замкнутых квантовых системах
2016-04-18
SCID: 54.1/efkztda3
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eigenstate thermalisation hypothesisequilibration and thermalisationgeneralised Gibbs ensemblesmany-body localisationquantum many-body systems
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Abstract (AI)
We review selected advances in the theoretical understanding of complex quantum many-body systems with regard to emergent notions of quantum statistical mechanics. We cover topics such as equilibration and thermalisation in pure state statistical mechanics, the eigenstate thermalisation hypothesis, the equivalence of ensembles, non-equilibration dynamics following global and local quenches as well as ramps. We also address initial state independence, absence of thermalisation, and many-body localisation. We elucidate the role played by key concepts for these phenomena, such as Lieb-Robinson bounds, entanglement growth, typicality arguments, quantum maximum entropy principles and the generalised Gibbs ensembles, and quantum (non-)integrability. We put emphasis on rigorous approaches and present the most important results in a unified language.
Key Findings
1
Generalised Gibbs ensembles and quantum integrability or non-integrability are presented as key concepts governing initial-state dependence and deviations from conventional thermalisation.
2
It covers circumstances where thermalisation fails, including non-equilibration after global or local quenches, ramps, and many-body localisation.
3
It examines the eigenstate thermalisation hypothesis, ensemble equivalence, and typicality as foundations for recovering statistical-mechanical behavior from pure quantum states.
4
The review identifies Lieb–Robinson bounds, entanglement growth, and quantum maximum-entropy principles as central tools for understanding equilibration and thermalisation dynamics.
5
The review synthesizes theoretical advances explaining how equilibration and thermalisation emerge in closed, complex quantum many-body systems.
Research Object
closed quantum many-body systems
Research Subject
the emergence and theoretical mechanisms of quantum statistical-mechanical behavior, including equilibration, thermalisation, ensemble equivalence, and non-equilibration dynamics
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2016-04-18
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