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arXiv · 2608.12066

Real-time topological rate at non-zero momentum in quenched QCD

Abstract

We present a proof-of-concept numerical study of the real-time topological rate at non-zero momentum in quenched lattice QCD at a temperature $T\simeq 1.24 \, T_c \simeq 360$ MeV, as an important step toward the determination of this quantity in full QCD. Our strategy, already applied to compute the sphaleron rate in pure Yang--Mills and in full QCD, extracts the rate from the resolution of an appropriate inverse problem, solved applying the Hansen--Lupo--Tantalo (HLT) method to the thermal Euclidean time-correlator of the topological charge density. This method requires to control three different limits: continuum limit, limit of vanishing smearing width used in the HLT inverse problem resolution, and limit of vanishing smoothing radius used in the topological charge density correlator computation. Our lattice calculation is based on the standard Wilson discretization for the gauge action, and on three gauge ensembles with up to $N_τ=16$ temporal points to achieve a controlled continuum limit. In all cases we employed an aspect ratio $LT=4$, which allowed us to compute the topological rate up to momenta as large as $p/T \sim 10$.

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Claudio Bonanno, Massimo D'Elia, Roberto Dionisio, Giuseppe Gagliardi, Andrea Giorgieri, Francesco Sanfilippo, Alessandra Valentino, Giovanni Villadoro. 2026-08-12. Real-time topological rate at non-zero momentum in quenched QCD. https://arxiv.org/abs/2608.12066

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