QCD phase structure at finite isospin chemical potential and smaller-than-physical quark mass

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Autori principali: Brandt, Bastian B., Chelnokov, Volodymyr, Cuteri, Francesca, Endrődi, Gergely
Natura: Preprint
Pubblicazione: 2025
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author Brandt, Bastian B.
Chelnokov, Volodymyr
Cuteri, Francesca
Endrődi, Gergely
author_facet Brandt, Bastian B.
Chelnokov, Volodymyr
Cuteri, Francesca
Endrődi, Gergely
contents Introduction of a nonzero isospin chemical potential in QCD leads to the emergence of a pion condensed phase at sufficiently large $μ_I$, bounded by a second order transition line. At zero temperature the pion condensate appears at $μ_I = m_π/ 2$. Recent numerical studies at physical quark masses show that the pion condensation boundary remains vertical up to the meeting point with the chiral crossover line. If this result remains valid when the light quark mass (and the pion mass) goes to zero, then in the chiral limit at temperatures below the chiral transition pion condensation happens at arbitrary nonzero $μ_I$. We report on results of a lattice QCD simulation of a 2+1 flavour QCD at nonzero isospin chemical potential, at smaller-than-physical light quark mass, that support this scenario.
format Preprint
id arxiv_https___arxiv_org_abs_2512_05789
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle QCD phase structure at finite isospin chemical potential and smaller-than-physical quark mass
Brandt, Bastian B.
Chelnokov, Volodymyr
Cuteri, Francesca
Endrődi, Gergely
High Energy Physics - Lattice
Introduction of a nonzero isospin chemical potential in QCD leads to the emergence of a pion condensed phase at sufficiently large $μ_I$, bounded by a second order transition line. At zero temperature the pion condensate appears at $μ_I = m_π/ 2$. Recent numerical studies at physical quark masses show that the pion condensation boundary remains vertical up to the meeting point with the chiral crossover line. If this result remains valid when the light quark mass (and the pion mass) goes to zero, then in the chiral limit at temperatures below the chiral transition pion condensation happens at arbitrary nonzero $μ_I$. We report on results of a lattice QCD simulation of a 2+1 flavour QCD at nonzero isospin chemical potential, at smaller-than-physical light quark mass, that support this scenario.
title QCD phase structure at finite isospin chemical potential and smaller-than-physical quark mass
topic High Energy Physics - Lattice
url https://arxiv.org/abs/2512.05789