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The chiral phase transition in two-flavor QCD from imaginary chemical potential

We investigate the order of the finite temperature chiral symmetry restoration transition for QCD with two massless fermions, by using a novel method, based on simulating imaginary values of the quark chemical potential $\mu=i\mu_i,\mu_i\in\mathbb{R}$. Our method exploits the fact that, for low enou...

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Detalles Bibliográficos
Autores principales: Bonati, Claudio, de Forcrand, Philippe, D'Elia, Massimo, Philipsen, Owe, Sanfilippo, Francesco
Lenguaje:eng
Publicado: 2014
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.90.074030
http://cds.cern.ch/record/1751225
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author Bonati, Claudio
de Forcrand, Philippe
D'Elia, Massimo
Philipsen, Owe
Sanfilippo, Francesco
author_facet Bonati, Claudio
de Forcrand, Philippe
D'Elia, Massimo
Philipsen, Owe
Sanfilippo, Francesco
author_sort Bonati, Claudio
collection CERN
description We investigate the order of the finite temperature chiral symmetry restoration transition for QCD with two massless fermions, by using a novel method, based on simulating imaginary values of the quark chemical potential $\mu=i\mu_i,\mu_i\in\mathbb{R}$. Our method exploits the fact that, for low enough quark mass $m$ and large enough chemical potential $\mu_i$, the chiral transition is decidedly first order, then turning into crossover at a critical mass $m_c(\mu)$. It is thus possible to determine the critical line in the $m - \mu^2$ plane, which can be safely extrapolated to the chiral limit by taking advantage of the known tricritical indices governing its shape. We test this method with standard staggered fermions and the result of our simulations is that $m_c(\mu=0)$ is positive, so that the phase transition at zero density is definitely first order in the chiral limit, on our coarse $N_t=4$ lattices with $a\simeq 0.3\,\mathrm{fm}$.
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institution Organización Europea para la Investigación Nuclear
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publishDate 2014
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spelling cern-17512252019-09-30T06:29:59Zdoi:10.1103/PhysRevD.90.074030http://cds.cern.ch/record/1751225engBonati, Claudiode Forcrand, PhilippeD'Elia, MassimoPhilipsen, OweSanfilippo, FrancescoThe chiral phase transition in two-flavor QCD from imaginary chemical potentialParticle Physics - LatticeWe investigate the order of the finite temperature chiral symmetry restoration transition for QCD with two massless fermions, by using a novel method, based on simulating imaginary values of the quark chemical potential $\mu=i\mu_i,\mu_i\in\mathbb{R}$. Our method exploits the fact that, for low enough quark mass $m$ and large enough chemical potential $\mu_i$, the chiral transition is decidedly first order, then turning into crossover at a critical mass $m_c(\mu)$. It is thus possible to determine the critical line in the $m - \mu^2$ plane, which can be safely extrapolated to the chiral limit by taking advantage of the known tricritical indices governing its shape. We test this method with standard staggered fermions and the result of our simulations is that $m_c(\mu=0)$ is positive, so that the phase transition at zero density is definitely first order in the chiral limit, on our coarse $N_t=4$ lattices with $a\simeq 0.3\,\mathrm{fm}$.arXiv:1408.5086CERN-PH-TH-2014-158IFUP-TH-2014-8oai:cds.cern.ch:17512252014-08-21
spellingShingle Particle Physics - Lattice
Bonati, Claudio
de Forcrand, Philippe
D'Elia, Massimo
Philipsen, Owe
Sanfilippo, Francesco
The chiral phase transition in two-flavor QCD from imaginary chemical potential
title The chiral phase transition in two-flavor QCD from imaginary chemical potential
title_full The chiral phase transition in two-flavor QCD from imaginary chemical potential
title_fullStr The chiral phase transition in two-flavor QCD from imaginary chemical potential
title_full_unstemmed The chiral phase transition in two-flavor QCD from imaginary chemical potential
title_short The chiral phase transition in two-flavor QCD from imaginary chemical potential
title_sort chiral phase transition in two-flavor qcd from imaginary chemical potential
topic Particle Physics - Lattice
url https://dx.doi.org/10.1103/PhysRevD.90.074030
http://cds.cern.ch/record/1751225
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