arXiv · 1511.05141
Extended slow dynamical regime close to the many-body localization transition
Abstract
Many-body localization is characterized by a slow logarithmic growth of the entanglement entropy after a global quantum quench while the local memory of an initial density imbalance remains at infinite time. We investigate how much the proximity of a many-body localized phase can influence the dynamics in the delocalized ergodic regime where thermalization is expected. Using an exact Krylov space technique, the out-of-equilibrium dynamics of the random-field Heisenberg chain is studied up to $L=28$ sites, starting from an initially unentangled high-energy product state. Within most of the delocalized phase, we find a sub-ballistic entanglement growth $S(t)\propto t^{1/z}$ with a disorder-dependent exponent $z\ge1$, in contrast with the pure ballistic growth $z=1$ of clean systems. At the same time, anomalous relaxation is also observed for the spin imbalance ${\cal{I}}(t)\propto t^{-ζ}$ with a continuously varying disorder-dependent exponent $ζ$, vanishing at the transition. This provides a clear experimental signature for detecting this non-conventional regime.
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David J. Luitz, Nicolas Laflorencie, Fabien Alet. 2017-05-29. Extended slow dynamical regime close to the many-body localization transition. https://doi.org/10.1103/physrevb.93.060201
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