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Fate of in-medium heavy quarks via a Lindblad equation

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arxiv 1705.03567 v2 pith:Y6LTGOCK submitted 2017-05-09 hep-ph nucl-th

classification hep-phnucl-th
keywords heavylindbladequationquarkscasedynamicspairplasma
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What is the dynamics of heavy quarks and antiquarks in a quark gluon plasma? Can heavy-quark bound states dissociate? Can they (re)combine? These questions are addressed by investigating a Lindblad equation that describes the quantum dynamics of the heavy quarks in a medium. The Lindblad equations for a heavy quark and a heavy quark-antiquark pair are derived from the gauge theory, following a chain of well-defined approximations. In this work the case of an abelian plasma has been considered, but the extension to the non-abelian case is feasible. A one-dimensional simulation of the Lindblad equation is performed to extract information about bound-state dissociation, recombination and quantum decoherence for a heavy quark-antiquark pair. All these phenomena are found to depend strongly on the imaginary part of the inter-quark potential.

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  1. Quantum Brownian motion of a heavy quark pair in the quark-gluon plasma

    nucl-th 2019-08 conditional novelty 6.0 of 10

    Heavy quarkonium's relative motion in the quark-gluon plasma can be evolved with a Lindblad master equation whose stochastic unraveling includes drag, and in one-dimensional simulations the pair thermalizes with a tem...

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