Avalanches and many-body resonances in many-body localized systems
Alan Morningstar, Luis Colmenarez, Vedika Khemani, David J. Luitz, and, David A. Huse

TL;DR
This study numerically investigates the stability and resonance properties of many-body localized systems, identifying key landmarks that delineate the transition from MBL to thermal phases and revealing the deep nature of the MBL regime.
Contribution
It provides new estimates for the avalanche instability point and characterizes the distribution of many-body resonances, refining the understanding of the MBL phase boundaries.
Findings
The MBL-to-thermal transition occurs deeper in the MBL regime than previously thought.
System-wide resonances are broadly distributed and involve rare eigenstate pairs.
Most eigenstates remain non-resonant even near the transition.
Abstract
We numerically study both the avalanche instability and many-body resonances in strongly-disordered spin chains exhibiting many-body localization (MBL). We distinguish between a finite-size/time MBL regime, and the asymptotic MBL phase, and identify some "landmarks" within the MBL regime. Our first landmark is an estimate of where the MBL phase becomes unstable to avalanches, obtained by measuring the slowest relaxation rate of a finite chain coupled to an infinite bath at one end. Our estimates indicate that the actual MBL-to-thermal phase transition, in infinite-length systems, occurs much deeper in the MBL regime than has been suggested by most previous studies. Our other landmarks involve system-wide resonances. We find that the effective matrix elements producing eigenstates with system-wide resonances are enormously broadly distributed. This means that the onset of such resonances…
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