论文标题

来自K/G通货膨胀的原始黑洞和次级重力波

Primordial black holes and secondary gravitational waves from k/G inflation

论文作者

Lin, Jiong, Gao, Qing, Gong, Yungui, Lu, Yizhou, Zhang, Chao, Zhang, Fengge

论文摘要

在质量中,大约$ 10^{ - 12} \ m_ \ odot $大多数暗物质构成原始黑洞(PBHS)的可能性是一个非常有趣的话题。要用此质量产生PBH,需要增强原始标量功率谱,以增强0.01的订单$ k \ sim 10^{12} \ \ \ \ text {mpc}^{ - 1} $。增强的功率谱还会在MHz带上产生大型的次级重力波。现象学三角洲功能功率谱通常用于讨论PBH和次级重力波的产生。基于G和K的通胀,我们提出了一种新的机制,通过引入非典型的动力学项$ [1-2G(ϕ)] x $,以具有峰值的功能$ g(ϕ)$来增强小尺度的功率谱。远离峰值,$ g(ϕ)$可以忽略不计,我们恢复了通常的慢速通货膨胀,该通胀受到宇宙微波背景Anisotrpy观察的约束。在峰值周围,慢速通胀会瞬时转向超慢滚通膨胀。可以通过通用电势获得功率谱的增强,也无需微调$ g(ϕ)$中的参数。次级引力波的能量光谱$ω_{GW}(f)$具有特征性的功率定律行为$ω__{GW}(f)\ sim f^{n} $,并且可以通过Pulsar定时数组和基于空间的重力波检测器进行测试。

The possibility that in the mass range around $10^{-12}\ M_\odot$ most of dark matter constitutes of primordial black holes (PBHs) is a very interesting topic. To produce PBHs with this mass, the primordial scalar power spectrum needs to be enhanced to the order of 0.01 at the scale $k\sim 10^{12}\ \text{Mpc}^{-1}$. The enhanced power spectrum also produces large secondary gravitational waves at the mHz band. A phenomenological delta function power spectrum is usually used to discuss the production of PBHs and secondary gravitational waves. Based on G and k inflations, we propose a new mechanism to enhance the power spectrum at small scales by introducing a non-canonical kinetic term $[1-2G(ϕ)]X$ with the function $G(ϕ)$ having a peak. Away from the peak, $G(ϕ)$ is negligible and we recover the usual slow-roll inflation which is constrained by the cosmic microwave background anisotrpy observations. Around the peak, the slow-roll inflation transiently turns to ultra slow-roll inflation. The enhancement of the power spectrum can be obtained with generic potentials, and there is no need to fine tune the parameters in $G(ϕ)$. The energy spectrum $Ω_{GW}(f)$ of secondary gravitational waves have the characteristic power law behaviour $Ω_{GW}(f)\sim f^{n}$ and is testable by pulsar timing array and space based gravitational wave detectors.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源