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Main Authors: Guenther, Jana N., Borsányi, Szabolcs, Fodor, Zoltan, Kara, Ruben, Katz, Sandor D., Parotto, Paolo, Pásztor, Attila, Ratti, Claudia, Szabó, Kalman K.
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2403.16709
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author Guenther, Jana N.
Borsányi, Szabolcs
Fodor, Zoltan
Kara, Ruben
Katz, Sandor D.
Parotto, Paolo
Pásztor, Attila
Ratti, Claudia
Szabó, Kalman K.
author_facet Guenther, Jana N.
Borsányi, Szabolcs
Fodor, Zoltan
Kara, Ruben
Katz, Sandor D.
Parotto, Paolo
Pásztor, Attila
Ratti, Claudia
Szabó, Kalman K.
contents An efficient way to study the QCD phase diagram at small finite density is to extrapolate thermodynamical observables from imaginary chemical potential. The phase diagram features a crossover line starting from the transition temperature already determined at zero chemical potential. In this work we focus on the Taylor expansion of this line up to $μ^4$ contributions. We present the continuum extrapolation of the crossover temperature based on different observables at several lattice spacings.
format Preprint
id arxiv_https___arxiv_org_abs_2403_16709
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The crossover line in the $(T, μ)$-phase diagram of QCD
Guenther, Jana N.
Borsányi, Szabolcs
Fodor, Zoltan
Kara, Ruben
Katz, Sandor D.
Parotto, Paolo
Pásztor, Attila
Ratti, Claudia
Szabó, Kalman K.
High Energy Physics - Lattice
An efficient way to study the QCD phase diagram at small finite density is to extrapolate thermodynamical observables from imaginary chemical potential. The phase diagram features a crossover line starting from the transition temperature already determined at zero chemical potential. In this work we focus on the Taylor expansion of this line up to $μ^4$ contributions. We present the continuum extrapolation of the crossover temperature based on different observables at several lattice spacings.
title The crossover line in the $(T, μ)$-phase diagram of QCD
topic High Energy Physics - Lattice
url https://arxiv.org/abs/2403.16709