论文标题

FIMP暗物质在异性M理论中

FIMP Dark Matter in Heterotic M-Theory

论文作者

Dumitru, Sebastian, Ovrut, Burt A.

论文摘要

在$ n = 1 $ supersymmortric的杂质$ m $ - 理论的背景下,我们提出了一种“冻结”机制,用于通过可观察到的和隐藏的扇区之间的“模量门户”生产暗物质。假定可观察的部门由MSSM或某些物理上可接受的扩展组成,而选择隐藏的部门则可以满足所有物理和数学约束。研究了两种基本类型的隐藏领域的暗物质生产过程;那些量规束结构组包含一个异常$ u(1)$以及结构组非亚洲且无异常的人。提出和分析了DILATON和“通用”模量与可观察和隐藏部门的所有领域的耦合。然后将这些相互作用组合起来,从可观察到的扇形颗粒的热浴到隐藏扇区产生模量门户。然后,分析了这些过程的异常和非反对病例。结果表明,只有未加成的隐藏扇区物质标量才能起暗物质的作用,并且这些主要在可观察部门的“重新加热”时期产生。在一个异常和非反对隐藏部门的背景下,我们计算了暗物质“遗物密度”。我们表明,在两种情况下,对于多种模量真空吸尘器,都可以正确预测可观察到的遗物密度。对于异常的$ u(1)$案例,我们在$ b-l $ $ mssm的背景下选择特定的物理可接受的真空,并表明一个精确地获得了测得的深色物质遗物丰度。

Within the context of $N=1$ supersymmetric heterotic $M$-theory, we present a "freeze-in" mechanism for producing dark matter via a "moduli portal" between the observable and hidden sectors. It is assumed that the observable sector consists of the MSSM or some physically acceptable extension of it, while the hidden sector is chosen so as to satisfy all physical and mathematical constraints. Dark matter production processes are examined for two fundamental types of hidden sectors; those whose gauge bundle structure group contains an anomalous $U(1)$ and those whose structure group is non-Abelian and anomaly free. The couplings of the dilaton and the "universal" modulus to all fields of the observable and hidden sectors are presented and analyzed. These interactions are then combined to produce a moduli portal from a thermal bath of observable sector particles to the hidden sector. These processes are then analyzed for both the anomalous and non-anomalous cases. It is shown that only the uncharged hidden sector matter scalars can play the role of dark matter, and that these are predominantly produced during the "reheating" epoch on the observable sector. Within the context of both an anomalous and non-anomalous hidden sector, we calculated the dark matter "relic density". We show that in both case, for a wide choice of moduli vacua, one can correctly predict the observabled relic density. For the anomalous $U(1)$ case, we choose a specific physically acceptable vacuum within the context of the $B-L$ MSSM and show that one precisely obtains the measured dark matter relic abundance.

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