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Localization in the Discrete Non-Linear Schr\"odinger Equation and geometric properties of the microcanonical surface

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arxiv 2102.10298 v3 pith:LZ5DLW76 submitted 2021-02-20 cond-mat.stat-mech cond-mat.quant-gasmath-phmath.MP

Localization in the Discrete Non-Linear Schr\"odinger Equation and geometric properties of the microcanonical surface

classification cond-mat.stat-mech cond-mat.quant-gasmath-phmath.MP
keywords surfaceenergyphasepotentialdiscreteequationgeometriclimit
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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It is well known that, if the initial conditions have sufficiently high energy density, the dynamics of the classical Discrete Non-Linear Schr\"odinger Equation (DNLSE) on a lattice shows a form of breaking of ergodicity, with a finite fraction of the total charge accumulating on a few sites and residing there for times that diverge quickly in the thermodynamic limit. In this paper we show that this kind of localization can be attributed to some geometric properties of the microcanonical potential energy surface, and that it can be associated to a phase transition in the lowest eigenvalue of the Laplacian on said surface. We also show that the approximation of considering the phase space motion on the potential energy surface only, with effective decoupling of the potential and kinetic partition functions, is justified in the large connectivity limit, or fully connected model. In this model we further observe a synchronization transition, with a synchronized phase at low temperatures.

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