Proper time evolution of magnetic susceptibility in amagnetized plasma of quarks and gluons

S. Tabatabaee, N. Sadooghi
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Abstract

In ultrarelativistic heavy-ion collisions, enormous magnetic fields are generated because of fast-moving charged particles. In the presence of these magnetic fields, the spin of particles is aligned either in the parallel or in the antiparallel direction with respect to the direction of the magnetic field. A finite magnetization is thus produced. It is known that a finite magnetic susceptibility, $\chi_{m}$, changes the evolution of the energy density of the quark-gluon plasma (QGP), which is believed to be created in these collisions. Depending on whether the system under consideration is a paramagnetic ($\chi_{m}>0$) or diamagnetic ($\chi_{m}<0$) fluid, it slows down or speeds up the decay of the energy density, and affects other thermodynamic quantities. In general, one expects that the magnetic susceptibility depends on the magnetic field and temperature. Bearing in mind that these parameters evolve with the evolution of the fluid, a nonuniform magnetic susceptibility in this system is thus expected. In this work, we first determine $\chi_{m}$ by using a certain analogy to the standard anisotropic kinetic theory, where the one-particle distribution function is replaced by the corresponding anisotropic distribution function. We then determine the proper time dependence of the magnetic susceptibility in the framework of the ideal transverse magnetohydrodynamics. We also study the effect of dissipation on the evolution of $\chi_{m}$.
夸克和胶子磁化等离子体磁化率的固有时演化
在超相对论性重离子碰撞中,快速移动的带电粒子会产生巨大的磁场。在这些磁场的存在下,粒子的自旋相对于磁场的方向是平行的或反平行的。这样就产生了有限的磁化。已知的是,有限磁化率$\chi_{m}$改变了夸克-胶子等离子体(QGP)能量密度的演化,这被认为是在这些碰撞中产生的。取决于所考虑的系统是顺磁性($\chi_{m}>0$)还是抗磁性($\chi_{m}<0$)流体,它会减慢或加速能量密度的衰减,并影响其他热力学量。一般来说,人们认为磁化率取决于磁场和温度。考虑到这些参数随流体的变化而变化,因此可以预期该系统的磁化率是非均匀的。在这项工作中,我们首先通过对标准各向异性动力学理论的某种类比来确定$\chi_{m}$,其中单粒子分布函数被相应的各向异性分布函数所取代。然后,我们在理想横向磁流体力学的框架下确定磁化率的固有时变关系。我们还研究了耗散对$\chi_{m}$演化的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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