论文标题

原始热等离子体中的高能量SM颗粒的级联

Cascades of high-energy SM particles in the primordial thermal plasma

论文作者

Mukaida, Kyohei, Yamada, Masaki

论文摘要

早期宇宙中的高能标准模型(SM)颗粒是由重长颗粒的衰减产生的。随后的热化是通过将高能量的一级颗粒分裂为原始热等离子体中低能量女儿的。此类过程的主要例子是在通货膨胀引起的通货膨胀导致SM颗粒引起的通货膨胀后重新加热。理解加热时的热化非常重要,因为它揭示了炎热宇宙的起源,并且可以打开产生暗物质和/或巴属不对称性的新机制。在本文中,我们研究了热等离子体中高能量SM颗粒的热化,并考虑到Landau-Pomeranchuk-小型效应在领先的近似值中。首次包含整个SM粒子内容和所有相关的SM交互,即SU(3)$ _ C \ times $ su(2)$ _ l \ times $ u(1)$ _ y $和顶级Yukawa的交互。每个SM物种的分布函数均通过数值和分析计算。在前几个分裂之后,我们通过分析获得了每个SM物种的分布函数。此外,我们证明,在足够数量的分裂之后,粒子分布是渐近动量下某些值的渐近分布,而与Entraton衰减注入的高能量颗粒无关。结果对于计算在热阶段产生的DM丰度很有用。提供了一个示例来说明一种计算级联热等离子体和高能颗粒之间散射的DM丰度的方法。

High-energy standard model (SM) particles in the early Universe are generated by the decay of heavy long-lived particles. The subsequent thermalization occurs through the splitting of high-energy primary particles into lower-energy daughters in primordial thermal plasma. The principal example of such processes is reheating after inflation caused by the decay of inflatons into SM particles. Understanding of the thermalization at reheating is extremely important as it reveals the origin of the hot Universe, and could open up new mechanisms for generating dark matter and/or baryon asymmetry. In this paper, we investigate the thermalization of high-energy SM particles in thermal plasma, taking into account the Landau--Pomeranchuk--Migdal effect in the leading-log approximation. The whole SM particle content and all the relevant SM interactions are included for the first time, i.e., the full gauge interactions of SU(3)$_c\times$SU(2)$_L\times$U(1)$_Y$ and the top Yukawa interaction. The distribution function of each SM species is computed both numerically and analytically. We have analytically obtained the distribution function of each SM species after the first few splittings. Furthermore, we demonstrate that, after a sufficient number of splittings, the particle distributions are asymptotic to certain values at low momentum, independent of the high-energy particles injected by inflaton decay. The results are useful to calculate the DM abundance produced during the pre-thermal phase. An example is provided to illustrate a way to calculate the DM abundance from the scattering between the thermal plasma and high-energy particles in the cascade.

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