2012
DOI: 10.1103/physrevd.86.094503
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Chiral transition andU(1)Asymmetry restoration from lattice QCD using domain wall fermions

Abstract: We present results on both the restoration of the spontaneously broken chiral symmetry and the effective restoration of the anomalously broken U (1) A symmetry in finite temperature QCD at zero chemical potential using lattice QCD. We employ domain wall fermions on lattices with fixed temporal extent N τ = 8 and spatial extent N σ = 16 in a temperature range of T = 139 − 195 MeV, corresponding to lattice spacings of a ≈ 0.12 − 0.18 fm. In these calculations, we include two degenerate light quarks and a strange… Show more

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Cited by 110 publications
(117 citation statements)
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References 80 publications
(100 reference statements)
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“…The temperature dependence of the U A (1) breaking measure, χ π − χ δ , has been extensively studied using the DWF formalism for several volumes as well as quark masses. 59,61,109 As depicted in Fig. 8, calculations with DWF clearly show that χ π − χ δ does not vanish around the chiral crossover temperature T c and remains non-vanishing for 165 MeV T 195 MeV, independent of the light quark masses.…”
Section: 108mentioning
confidence: 92%
“…The temperature dependence of the U A (1) breaking measure, χ π − χ δ , has been extensively studied using the DWF formalism for several volumes as well as quark masses. 59,61,109 As depicted in Fig. 8, calculations with DWF clearly show that χ π − χ δ does not vanish around the chiral crossover temperature T c and remains non-vanishing for 165 MeV T 195 MeV, independent of the light quark masses.…”
Section: 108mentioning
confidence: 92%
“…For N c = 3 and N f = 2 we have κ = 23/3. Although χ vanishes in the massless limit, the Dirac zero modes associated with the instantons induce a residual contribution to the U(1) A symmetry breaking, giving rise to a difference between the susceptibilities of the so-called π and δ channels at high T [17,18], which behaves as χ π − χ δ ∼ T −κ in the chiral massless limit.…”
Section: Introductionmentioning
confidence: 99%
“…The breaking of the U(1) A symmetry at finite T , and its role at the chiral transition, has been much investigated [17][18][19][20][21][22][23][24][25][26][27][28][29][30][31][32][33][34]. Monte Carlo (MC) simulations of lattice QCD [17][18][19][20][21][22][23][24][25] find a substantial suppression of the U(1) A anomaly effects at large T , as predicted by the DIG model.…”
Section: Introductionmentioning
confidence: 99%
“…The thermal behaviors of the topological and chiral susceptibilities serve as useful theoretical objects to discriminate different patterns of the U A ð1Þ and chiral symmetry restoration and have been extensively investigated by many lattice simulations [18][19][20][21] and effective theory studies [8][9][10][11][12][13][14][15][16][17]. The masses of the light flavor pseudoscalar mesons π, K, η and η 0 will be definitely affected by the restoration of the U A ð1Þ and chiral symmetries.…”
Section: Introductionmentioning
confidence: 99%