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Bottomonium suppression in pNRQCD and open quantum system approach

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arxiv 2503.22507 v1 pith:PEZGS4Y2 submitted 2025-03-28 hep-ph

classification hep-ph
keywords quantumbottomoniumequationevolutionheavy-quarkoniumstatesjumpslindblad
verification ladder T0 review T1 audit T2 compute T3 formal
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By employing the potential non-relativistic quantum chromodynamics (pNRQCD) effective field theory within an open quantum system framework, we derive a Lindblad equation governing the evolution of the heavy-quarkonium reduced density matrix, accurate to next-to-leading order (NLO) in the ratio of the state's binding energy to the medium's temperature [1]. The derived NLO Lindblad equation provides a more reliable description of heavy-quarkonium evolution in the quark-gluon plasma at low temperatures compared to the leading-order truncation. For phenomenological applications, we numerically solve this equation using the quantum trajectories algorithm. By averaging over Monte Carlo-sampled quantum jumps, we obtain solutions without truncation in the angular momentum quantum number of the considered states. Our analysis highlights the importance of quantum jumps in the nonequilibrium evolution of bottomonium states within the quark-gluon plasma [2]. Additionally, we demonstrate that the quantum regeneration of singlet states from octet configurations is essential to explain experimental observations of bottomonium suppression. The heavy-quarkonium transport coefficients used in our study align with recent lattice QCD determinations.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Quantum simulation of bottomonium dynamics in the quark-gluon plasma via the Lindblad equation

    nucl-th 2026-08 conditional novelty 4.0 of 10

    A quantum circuit simulation of the next-to-leading-order Lindblad equation for bottomonium in the quark-gluon plasma matches QuTiP and finds a small color-octet contribution to the Upsilon(1S) survival probability.

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