Meson masses in external magnetic fields with HISQ fermions

H. Ding, Sheng-Tai Li, S. Mukherjee, A. Tomiya, Xiao-Dan Wang
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引用次数: 16

Abstract

We studied the temporal correlation function of mesons in the pseudo-scalar channel in (2+1)-flavor QCD in the presence of external magnetic fields at zero temperature. The simulations were performed on $32^3 \times 96$ lattices using the Highly Improved Staggered Quarks (HISQ) action with $m_{\pi} \approx $ 230 MeV. The strength of magnetic fields $|eB|$ ranges from 0 to around 3.3 GeV$^2$ ($\sim 60 m_\pi^2$). We found that the masses of neutral pseudo-scalar particles, e.g. neutral pion and kaon, monotonouslly decrease as the magnetic field grows and then saturate at a nonzero value. It is observed that heavier neutral pseudo-scalars are less affected by magnetic fields. Moreover, we found a non-monotonous behavior of charged pion and kaon mass in magnetic field for the first time. In the case of small magnetic field (0 $\leq~|eB| \lesssim$ 0.3 GeV$^2~\sim 6m_\pi^2$ ) the mass of charged pseudo-scalar grows with magnetic field and can be well described by the Lowest Landau Level approximation, while for $|eB|$ larger than 0.3 GeV$^2$ the mass starts to decrease. The possible connection between $|eB|$ dependences of neutral pion mass and the decreasing behavior of pseudo-critical temperature in magnetic field is discussed. Due to the nonzero value of neutral pion mass our simulation indicates that the superconducting phase of QCD does not exist in the current window of magnetic field.
外磁场中的介子质量与HISQ费米子
研究了零温度下(2+1)味QCD赝标量通道中介子在外加磁场作用下的时间相关函数。并进行了仿真 $32^3 \times 96$ 使用高度改进的交错夸克(HISQ)作用的晶格 $m_{\pi} \approx $ 230mev。磁场的强度 $|eB|$ 范围从0到3.3 GeV左右$^2$ ($\sim 60 m_\pi^2$). 我们发现中性伪标量粒子的质量,如中性介子和介子,随着磁场的增大而单调减小,然后在一个非零值处饱和。观察到较重的中性伪标量受磁场的影响较小。此外,我们还首次发现了带电介子和介子质量在磁场中的非单调行为。在磁场较小的情况下(0 $\leq~|eB| \lesssim$ 0.3 GeV$^2~\sim 6m_\pi^2$ ),带电伪标量的质量随磁场的增大而增大,可以用最低朗道能级近似很好地描述 $|eB|$ 大于0.3 GeV$^2$ 质量开始减小。两者之间可能存在的联系 $|eB|$ 讨论了中性介子质量的依赖关系和伪临界温度在磁场中的下降行为。由于中性介子质量的非零值,我们的模拟结果表明,在磁场的电流窗口中,QCD不存在超导相。
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