首页> 外文期刊>Physical review, D >Relaxation time for the alignment between the spin of a finite-mass quark or antiquark and the thermal vorticity in relativistic heavy-ion collisions
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Relaxation time for the alignment between the spin of a finite-mass quark or antiquark and the thermal vorticity in relativistic heavy-ion collisions

机译:有限质量夸克或抗结构旋转与相对论重离子碰撞中的热涡度的弛豫时间

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We study the relaxation time required for the alignment between the spin of a finite-mass quark or antiquark and the thermal vorticity, at finite temperature and baryon chemical potential, in the context of relativistic heavy-ion collisions. The relaxation time is computed as the inverse of the total reaction rate that in turn is obtained from the imaginary part of the quark or antiquark self-energy. We model the interaction between spin and thermal vorticity within the medium by means of a vertex coupling quarks and thermal gluons that, for a uniform temperature, is proportional to the global angular velocity and inversely proportional to the temperature. We use realistic estimates for the angular velocities for different collision energies and show that the effect of the quark mass is to reduce the relaxation times as compared to the massless quark case. Using these relaxation times we estimate the intrinsic quark and antiquark polarizations produced by the thermal vorticity. We conclude by pointing out that, although the intrinsic global polarization of the s -quark turns out to be larger than that of the s ˉ -quark, there is room to explain recent STAR results which show that the global polarization of Λ ˉ is larger than that of Λ when considering that these hyperons can be produced from different density regions in a core-corona model.
机译:在相对论的重离子碰撞的背景下,我们研究了有限质量夸克或抗型型抗体和抗体和热涡度的旋转和热涡度之间的对准所需的放松时间。作为从夸克或古董自我能量的虚构部分获得的总反应速率的逆转速度,弛豫时间被计算为总反应速率。我们通过顶点耦合夸克和热粘液模拟介质内的旋转和热涡度之间的相互作用,即用于均匀的温度,与全局角速度成比例,与温度成反比。我们对不同碰撞能量的角速度使用现实估计值,并表明夸克质量的效果是与无阻塞夸克壳相比减少松弛时间。使用这些弛豫时间,我们估计由热涡度产生的内在曲线和古夸克偏振。我们通过指出,尽管S -Quark的内在全球极化转向大于Sˉ-Quark的内在全球极化,但是有空间来解释最近的明星结果,表明λˉ的全局极化是更大的考虑到这些超距离可以从核心电晕模型中的不同密度区域产生这些超等。

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