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Can we study the many-body localisation transition?

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arxiv 1911.07882 v2 pith:CKAW6DTU submitted 2019-11-18 cond-mat.dis-nn cond-mat.quant-gascond-mat.str-el

classification cond-mat.dis-nncond-mat.quant-gascond-mat.str-el
keywords timesystemtransportdelocaliseddisordereigenstatesheisenberglarger
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We present a detailed analysis of the length- and timescales needed to approach the critical region of MBL from the delocalised phase, studying both eigenstates and the time evolution of an initial state. For the eigenstates we show that in the delocalised region there is a single length, which is a function of disorder strength, controlling the finite-size flow. Small systems look localised, and only for larger systems do resonances develop which restore ergodicity in the form of the eigenstate thermalisation hypothesis. For the transport properties, we study the time necessary to transport a single spin across a domain wall, showing how this grows quickly with increasing disorder, and compare it with the Heisenberg time. For a sufficiently large system the Heisenberg time is always larger than the transport time, but for a smaller system this is not necessarily the case. We conclude that the properties of the MBL transition cannot be explored using the system sizes or times available to current numerical and experimental studies.

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  1. Time dynamics with matrix product states: Many-body localization transition of large systems revisited

    cond-mat.stat-mech 2019-08 conditional novelty 7.0 of 10

    TDVP time evolution with insufficient bond dimension spuriously overestimates delocalization and entanglement in the MBL crossover, and correcting this lowers the estimated critical disorder to Wc = 4.2 ± 0.3.

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