论文标题

因果重力波作为自由流颗粒的探针和宇宙的膨胀

Causal gravitational waves as a probe of free streaming particles and the expansion of the Universe

论文作者

Hook, Anson, Marques-Tavares, Gustavo, Racco, Davide

论文摘要

由局部物理产生的引力波谱的低频部分(例如相变或参数共振)在很大程度上是通过因果关系固定的,并为早期的宇宙提供了一个干净的窗口。在这项工作中,分析了频谱的低频端,以强调物理理解,例如由于过度抑制的谐波振荡器的激发而抑制了引力波的产生,并且由于在地平线外时被冻结而导致其增强。由于亚匹马和超级马物理学之间的差异,不可避免地会有一个独特的光谱特征,可以直接测量发生相变的完整性哈勃速率。例如,相变期间存在的自由流颗粒(例如重力波本身)会影响超级马模式的产生。与众所周知的因果$ k^3 $超级马缩放随机重力波相比,这会导致频谱在低频下的频谱降低。如果大量的能量密度在自由流颗粒中,它们甚至会导致频谱中振荡特征的出现。如果在产生波浪时宇宙不是辐射的主导,则在亚称到超高因果关系之间的过渡时也发生了类似的特征。这些特征用于显示出令人惊讶的后果,例如,重力波的产生后的物质统治时期实际上在低频下增加了其功率谱。

The low frequency part of the gravitational wave spectrum generated by local physics, such as a phase transition or parametric resonance, is largely fixed by causality, offering a clean window into the early Universe. In this work, this low frequency end of the spectrum is analyzed with an emphasis on a physical understanding, such as the suppressed production of gravitational waves due to the excitation of an over-damped harmonic oscillator and their enhancement due to being frozen out while outside the horizon. Due to the difference between sub-horizon and super-horizon physics, it is inevitable that there will be a distinct spectral feature that could allow for the direct measurement of the conformal Hubble rate at which the phase transition occurred. As an example, free-streaming particles (such as the gravity waves themselves) present during the phase transition affect the production of super-horizon modes. This leads to a steeper decrease in the spectrum at low frequencies as compared to the well-known causal $k^3$ super-horizon scaling of stochastic gravity waves. If a sizable fraction of the energy density is in free-streaming particles, they even lead to the appearance of oscillatory features in the spectrum. If the universe was not radiation dominated when the waves were generated, a similar feature also occurs at the transition between sub-horizon to super-horizon causality. These features are used to show surprising consequences, such as the fact that a period of matter domination following the production of gravity waves actually increases their power spectrum at low frequencies.

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