Gravitational waves from self-resonance during reheating with a quantum-corrected inflaton potential
Tomoya Inada, Noel Jonathan Jobu, Kenji Nishiwaki, Toshifumi Noumi, Naoki Yamatsu
Abstract
We investigate how localized quantum corrections to the inflaton potential affect preheating dynamics and the resulting stochastic gravitational wave (GW) spectrum. When these corrections sufficiently suppress the quadratic term of the potential near its minimum, inflaton self-resonance can produce a peaked GW spectrum. On the other hand, we find that a smooth and enhanced spectrum can appear if the quadratic term acquires a negative coefficient. As a concrete realization, we analyze the α-attractor T-model with a one-loop Coleman--Weinberg correction induced by a heavy scalar and compute the resulting GW spectra using lattice simulations. The GW signals lie in the ultra-high-frequency regime at frequencies above the kHz range. These results suggest that GW signals from preheating may probe quantum corrections to the inflaton potential, thereby providing indirect information about the underlying UV physics.
Create a lesson
Related papers
High-quality axion from chain seesaw
Pei-Hong Gu
Plasma Effects Suppress Mixing-Induced Collisional Freeze-In
Shao-Ping Li, Josef Pradler
Mass spectrum and decay widths of charmonium-like mesons: A diabatic approach with complex scaling
Zi-Zhao Zhang, Bo-Chao Liu
Centrality-dependent nuclear modification from hard-soft correlations in the glasma
Coleridge Faraday, W. A. Horowitz, Björn Schenke
Generalised Dynamic Radius Jets for Robust Collider Analyses
Songshaptak De, Tousik Samui, Ritesh K. Singh
Impact of Heavy Modes on Primordial Black Hole Formation
Guo-He Li, Mian Zhu, Chunshan Lin