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arXiv · 2504.01397

Critical behavior and ultraviolet scaling of induced gravitational waves from an early matter-dominated era

Abstract

Critical behavior and ultraviolet scaling of induced gravitational waves (GWs) from an early matter-dominated (eMD) era are studied in the context of primordial black hole evaporation. The depth of the eMD is characterized by the minimum parameter of the equation of state $ω_{\min}$ that the Universe can attain during this phase. We identify a critical value $ω_{c}\sim 7.3\times10^{-3}$ that separates two regimes. For $ω_{\min}<ω_{c}$, the GW peak lies at the non-linear cut-off point and requires non-linear dynamics. For $ω_{\min}>ω_{c}$, the peak originates from modes that reenter near the matter-radiation equality, and the ultraviolet tail follows a distinct scaling $k^{-3/2}$. This critical behavior provides a clear definition of deep versus shallow eMD and a robust spectral signature for future GW observations.

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Zhen-Min Zeng, Cheng-Jun Fang, Zong-Kuan Guo. 2025-09-03. Critical behavior and ultraviolet scaling of induced gravitational waves from an early matter-dominated era. https://arxiv.org/abs/2504.01397

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