Scaling theory of decoherence in Dicke superradiance
Nico S. Bassler, Julian Lyne, Javier Cuerda
Abstract
The survival of many-body coherence depends on the competition between correlation buildup and decoherence. In Dicke superradiance, collective emission builds up correlations, producing a peak intensity scaling as N2 for N emitters. We develop a scaling theory including local dephasing and spontaneous emission and obtain fully collective, partially collective, and independent-emitter scaling regimes. The boundary of the fully collective regime defines a continuous phase transition in a transient observable. Local decoherence can prevent N2 scaling despite increasing N.
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