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Universality in volume-law entanglement of scrambled pure quantum states

Yuya O. NakagawaDepartment of Physics, Faculty of Science, The University of Tokyo, Bunkyo-ku, Tokyo, 133-0022, Japan. [email protected]Masataka WatanabeDepartment of Physics, Faculty of Science, The University of Tokyo, Bunkyo-ku, Tokyo, 133-0022, JapanHiroyuki FujitaDepartment of Physics, Faculty of Science, The University of Tokyo, Bunkyo-ku, Tokyo, 133-0022, JapanSho SugiuraInstitute for Solid State Physics, The University of Tokyo, Kashiwa, Chiba, 277-8581, Japan. [email protected]
2018en
ABI

Аннотация

A pure quantum state can fully describe thermal equilibrium as long as one focuses on local observables. The thermodynamic entropy can also be recovered as the entanglement entropy of small subsystems. When the size of the subsystem increases, however, quantum correlations break the correspondence and mandate a correction to this simple volume law. The elucidation of the size dependence of the entanglement entropy is thus essentially important in linking quantum physics with thermodynamics. Here we derive an analytic formula of the entanglement entropy for a class of pure states called cTPQ states representing equilibrium. We numerically find that our formula applies universally to any sufficiently scrambled pure state representing thermal equilibrium, i.e., energy eigenstates of non-integrable models and states after quantum quenches. Our formula is exploited as diagnostics for chaotic systems; it can distinguish integrable models from non-integrable models and many-body localization phases from chaotic phases.

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