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Universal slow growth of entanglement in interacting strongly disordered systems

2013/04/30 by Maksym Serbyn, Z. Papić, Dmitry A. Abanin · 2 citations
Physics and Astronomy · #cond-mat.str-el #cond-mat.dis-nn #cond-mat.stat-mech

paper · pdf · doi:10.1103/physrevlett.110.260601

published as Phys. Rev. Lett. 110, 260601 (2013) · 5 pages, 3 figures; v2: minor changes, few typos corrected, new references added; v3: published version

arxiv created 2013/07/02 · arxiv updated 2013/07/03

Abstract

Recent numerical work by Bardarson et. al. [Phys. Rev. Lett. 109, 017202 (2012)] revealed a slow, logarithmic in time, growth of entanglement entropy for initial product states in a putative many-body localized phase. We show that this surprising phenomenon results from the dephasing due to exponentially small interaction-induced corrections to the eigenenergies of different states. For weak interactions, we find that the entanglement entropy grows as ξln (Vt/ℏ), where V is the interaction strength, and ξis the single-particle localization length. The saturated value of the entanglement entropy at long times is determined by the participation ratios of the initial state over the eigenstates of the subsystem. The proposed mechanism is illustrated with numerical simulations of small systems. Our work shows that the logarithmic entanglement growth is a universal phenomenon characteristic of the many-body localized phase in any number of spatial dimensions, and reveals a broad hierarchy of dephasing time scales present in such a phase.

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