论文标题

QCD相图的颜色,风味,温度和磁场依赖性:磁催化及其反向

Color, Flavor, Temperature and Magnetic Field Dependence of QCD Phase Diagram: Magnetic Catalysis and its Inverse

论文作者

Ahmad, Aftab, Bashir, Adnan, Bedolla, Marco A., Cobos-Martínez, J. J.

论文摘要

我们研究了$ su(n_c)$的基本表示中的夸克的动力性手性对称性破坏,以$ n_f $ $ n_f $ light夸克风味。我们还研究了在有限温度$ t $和/或存在恒定外部磁场$ eb $的情况下量子染色体动力学的相图。该分析的统一形式主义是由对称性的schwinger-dyson方程对向量$ \ times $ \ vector触点相互作用模型的处理提供的,该模型编码了量子染色体动力学的几种良好特征,以尽可能地模仿后者。反登录和手性对称性恢复在$ t = 0 = eb $的临界值高于$ n_f $以上。另一方面,升高温度本身筛选较强的相互作用,从而确保较小的$ n_f $的值足以在较高温度下恢复手性对称性。我们还观察到足够强的磁场的磁性催化现象。但是,我们注意到,如果模型的有效耦合强度随磁场的函数而降低,则可以在此功能依赖性的某个窗口中触发逆磁催化。我们的模型允许每种情况的动态性手性对称性破坏和限制同时发作。我们简单但有效模型的定性和定量预测与晶格结果以及基于复杂的量子染色体动力学的复杂连续研究的其他可靠和精制预测相当令人满意。

We study dynamical chiral symmetry breaking for quarks in the fundamental representation of $SU(N_c)$ for $N_f$ number of light quark flavors. We also investigate the phase diagram of quantum chromodynamics at finite temperature $T$ and/or in the presence of a constant external magnetic field $eB$. The unified formalism for this analysis is provided by a symmetry-preserving Schwinger-Dyson equations treatment of a vector$\times$vector contact interaction model which encodes several well-established features of quantum chromodynamics to mimic the latter as closely as possible. Deconfinement and chiral symmetry restoration are triggered above a critical value of $N_f$ at $T=0=eB$. On the other hand, increasing temperature itself screens strong interactions, thus ensuring that a smaller value of $N_f$ is sufficient to restore chiral symmetry at higher temperatures. We also observe the well-known phenomenon of magnetic catalysis for a strong enough magnetic field. However, we note that if the effective coupling strength of the model decreases as a function of magnetic field, it can trigger inverse magnetic catalysis in a certain window of this functional dependence. Our model allows for the simultaneous onset of dynamical chiral symmetry breaking and confinement for each case. Qualitative as well as quantitative predictions of our simple but effective model are in reasonably satisfactory agreement with lattice results and other reliable and refined predictions based upon intricate continuum studies of quantum chromodynamics.

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