论文标题

重力介导的暗物质的自旋依赖性在扭曲的额外维度中

Spin-dependence of Gravity-mediated Dark Matter in Warped Extra-Dimensions

论文作者

Folgado, Miguel G., Donini, Andrea, Rius, Nuria

论文摘要

我们研究了暗物质(DM)颗粒的自旋依赖性,这些暗物质(DM)颗粒在额外维度的Randall-Sundrum场景中与标准模型(SM)相互作用。我们假设暗物质和标准模型都局限于TEV(Infra-Red)Brane,并且仅通过引力介体相互作用,即Kaluza-Klein Gravitons和Radion。我们分析了不同的DM歼灭通道,并发现在旋转0、1/2和1的dm粒子的冻结机制中,可以实现目前观察到的暗物质的遗物丰富,$ω_ {\ rm dm} $。边界。我们还考虑了辐射在现象学中的影响。我们发现,对于DM颗粒质量$ m _ {\ rm dm} \在[1,15] $ tev中,大多数参数空间被当前约束排除,或者将被LHC Run III或LHC升级所排除在外,而LHC升级为HL-LHC。辐射的存在不会显着改变非排除区域。 DM质量仍然可以实现观察到的DM遗物丰度,$ m _ {\ rm} \ in [4,15] $ tev和$ m_ {g_1} <10 $ tev用于标量和矢量玻色子暗物质。另一方面,对于旋转1/2 fermion暗物质,仅在[4,15] $ tev中具有$ m _ {\ rm dm} \的微小区域,$ m_ {g_1} \ in [5,10] $ tev和$λ> m_ {g_1} $与theorthecorentic and theorextical和实验性范围兼容。

We study the spin-dependence of Dark Matter (DM) particles which interact gravitationally with the Standard Model (SM) in an extra-dimensional Randall-Sundrum scenario. We assume that both the Dark Matter and the Standard Model are confined to the TeV (Infra-red) brane and only interact via gravitational mediators, namely Kaluza-Klein gravitons and the radion. We analyze the different DM annihilation channels and find that it is possible to achieve the presently observed relic abundance of Dark Matter, $Ω_{\rm DM}$, within the freeze-out mechanism for DM particles of spin 0, 1/2 and 1. We study the region of the model parameter space for which $Ω_{\rm DM}$ is achieved and compare it with the different experimental and theoretical bounds. We also consider the impact of the radion in the phenomenology. We find that, for DM particles mass $m_{\rm DM} \in [1,15]$ TeV, most of the parameter space is excluded by the current constraints or will be excluded by the LHC Run III or by the LHC upgrade, the HL-LHC. The presence of the radion does not modify significantly the non-excluded region. The observed DM relic abundance can still be achieved for DM masses $m_{\rm } \in [4,15]$ TeV and $m_{G_1} < 10$ TeV for scalar and vector boson Dark Matter. On the other hand, for spin 1/2 fermion Dark Matter, only a tiny region with $m_{\rm DM } \in [4, 15]$ TeV, $m_{G_1} \in [5,10]$ TeV and $Λ> m_{G_1}$ is compatible with theoretical and experimental bounds.

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