Abstract
We point out that chiral condensates at nonzero temperature and magnetic fields are in strict connection to the space-time integral of corresponding two-point neutral meson correlation functions in the pseudoscalar channel via the Ward-Takahashi identity. Screening masses of neutral pseudoscalar mesons, which are defined as the exponential decay of the corresponding spatial correlation functions in the long distance, thus are intrinsically connected to (inverse) magnetic catalysis of chiral condensates. To study this we performed lattice simulations of ($2+1$)-flavor QCD on ${32}^{3}\ifmmode\times\else\texttimes\fi{}{N}_{t}$ lattices with pion mass ${M}_{\ensuremath{\pi}}\ensuremath{\simeq}220\text{ }\text{ }\mathrm{MeV}$ in a fixed scale approach having temperature $T\ensuremath{\in}[17,281]\text{ }\text{ }\mathrm{MeV}$ and magnetic field strength $eB\ensuremath{\in}[0,2.5]\text{ }\text{ }{\mathrm{GeV}}^{2}$. We find that screening lengths, i.e., inverses of screening masses of ${\ensuremath{\pi}}^{0}$, ${K}^{0}$ and ${\ensuremath{\eta}}_{s\overline{s}}^{0}$, turn out to have the similar complex $eB$ and $T$ dependences of the corresponding chiral condensates. Although the transition temperature is found to always decrease as $eB$ grows, we show that the suppression due to magnetic fields becomes less significant for hadron screening length and chiral condensates with heavier quarks involved, and ceases to occur for ${\ensuremath{\eta}}_{s\overline{s}}^{0}$ and strange quark chiral condensate. The complex $eB$ and $T$ dependences of both screening masses and chiral condensates, reflecting the crossover nature of the QCD transition, are attributed to the competition between sea and valence quark effects. These findings could be useful to guide low-energy models and effective theories of QCD.
Highlights
The properties of thermal medium governed by quantum chromodynamics (QCD) in the magnetic fields have attracted a lot of interest recently since the strong magnetic field, which is at the order of QCD scale Λ2QCD ∼ 104 MeV2 ∼ 1017 Gauss, is expected to exist in the peripheral relativistic heavy-ion collisions [1–4], the early Universe [5], and magnetars [6]
Observed at T ≤ 120 MeV, while the inverse magnetic catalysis can be seen at T 1⁄4 140 and MeV in the proximity of TpcðeB 1⁄4 0Þ ≃ MeV
With the value of pion mass larger than 520 MeV it is found that QCD turns from displaying inverse magnetic catalysis to magnetic catalysis of light quark condensates while Tpc still decreases as eB grows [16,17]
Summary
The properties of thermal medium governed by quantum chromodynamics (QCD) in the magnetic fields have attracted a lot of interest recently since the strong magnetic field, which is at the order of QCD scale Λ2QCD ∼ 104 MeV2 ∼ 1017 Gauss, is expected to exist in the peripheral relativistic heavy-ion collisions [1–4], the early Universe [5], and magnetars [6]. It is found recently that the reduction of Tpc in stronger magnetic fields is observed even when the inverse magnetic catalysis of light quark chiral condensates is absent in QCD with very heavy pions [16,17]. In analogy to the case at zero magnetic fields the thermal properties of the Goldston boson, π0, could be the key to understanding the QCD phase structure, including the reduction of Tpc and inverse magnetic catalysis. We show the complex eB and temperature dependences of up, down and strange quark chiral condensates and screening masses of π0, K0 and η0ssextracted from the corresponding spatial correlation functions, as well as the eB dependence of Tpc. The sea and valence quark effects leading to these phenomena are discussed.
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