论文标题

具有异常磁矩的磁化夸克物质的各向异性压力

Anisotropic pressure of magnetized quark matter with anomalous magnetic moment

论文作者

Chaudhuri, Nilanjan, Ghosh, Snigdha, Roy, Pradip, Sarkar, Sourav

论文摘要

我们研究了组成夸克质量的磁场$(EB)$依赖性,纵向和横向压力以及强烈相互作用的夸克物质的磁化和磁敏感性。我们在有限温度$(t)$(t)$和有限的夸克化学势$(μ_Q)$捕获不同阶段的手势相变的不同阶段。我们发现,对于手性对称性相位,横向压力,磁化和磁敏感性对于$ eb $的大值变得高度振荡。但是,当手性对称性(部分恢复)且压力的各向异性性质在$ eb $的较小值时,压力的各向异性性质也会显着,但振荡不再以$ t $和$μ_Q$的较高值而停止。随着夸克AMM的纳入导致过渡温度的反磁催化,我们观察到横向压力,磁化和磁敏感性的变化在手学过渡温度附近显着改变。此外,在手性过渡温度上方的磁敏感性在$ eb $的广泛范围内保持阳性,表明强烈相互作用的夸克物质的顺磁特征。最后,我们还研究了在夸克阶段中强烈相互作用物质的磁性。获得的结果可能对重型离子碰撞产生的热和密集物质的磁流失动力学演变很有用。

We investigate magnetic field $(eB)$ dependence of constituent quark mass, the longitudinal and transverse pressure as well as the magnetization and magnetic susceptibility of strongly interacting quark matter. We employ the two-flavour Polyakov Nambu--Jona-Lasinio model with the inclusion of the anomalous magnetic moment (AMM) of the quarks at finite temperature $(T)$ and finite quark chemical potential $(μ_q)$ capturing different stages of chiral phase transition. We find that the transverse pressure, magnetization and magnetic susceptibility become highly oscillatory for large values of $eB$ in the chiral symmetry broken phase. However the oscillations cease to occur at higher values of $T$ and $μ_q$ when chiral symmetry is (partially) restored and the anisotropic nature of the pressure becomes significant even at smaller values of $eB$. As the inclusion of AMM of the quarks leads to inverse magnetic catalysis of the transition temperature we observe that the variations of transverse pressure, magnetization and magnetic susceptibility are significantly modified in the vicinity of the chiral transition temperature. Furthermore, above the chiral transition temperature the magnetic susceptibility is found to remain positive for a wide range of $eB$ indicating a paramagnetic character of the strongly interacting quark matter. Finally, we have also examined the magnetism of strongly interacting matter in the quarkyonic phase. The obtained results could be useful for a magnetohydrodynamic evolution of hot and dense matter created in heavy-ion collisions.

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