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Main Authors: Garcia, Marcos A. G., Garcia-Vega, Angel, Verner, Sarunas
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2604.05078
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author Garcia, Marcos A. G.
Garcia-Vega, Angel
Verner, Sarunas
author_facet Garcia, Marcos A. G.
Garcia-Vega, Angel
Verner, Sarunas
contents We compute the stochastic gravitational wave background sourced at second order by a spectator scalar field $χ$ coupled to the inflaton $ϕ$ through a portal interaction $σϕ^2χ^2$ and with quartic self-interaction $λ_χχ^4/4!$. In the large portal coupling regime ($σ/λ\gg 1$, with $λ$ the inflaton normalization), parametric resonance during reheating amplifies the spectator power spectrum by many orders of magnitude near the resonance band until Hartree backreaction from the quartic coupling detunes the instability, while the large inflationary effective mass suppresses superhorizon power and ensures compatibility with CMB isocurvature bounds. We focus on the direct field-gradient source $\partial_aχ\,\partial_bχ$ in the second-order Einstein equations and derive a master formula that factorizes into a spectral integral over the frozen, vacuum-subtracted spectator spectrum and a time integral encoding the post-inflationary expansion history. For our benchmark reheating history we obtain analytic scaling relations, including a peak amplitude $Ω_{\rm GW}\propto T_{\rm reh}^{8/3}$, strong dependence on the portal strength, and weak sensitivity to $m_χ$. We validate the framework against nonlinear lattice simulations, demonstrating complementarity: the Hartree treatment captures superhorizon evolution inaccessible to the lattice, while the lattice resolves rescattering and fragmentation near the spectral peak. For $σ/λ\simeq 10^4$ and $T_{\rm reh}=2 \times 10^{14}\,\mathrm{GeV}$, the signal reaches $Ω_{\rm GW}h^2\sim 10^{-11}$ at $f\sim10^{7}$-$10^{8}\,\mathrm{Hz}$. Increasing $λ_χ$ at fixed $σ$ has a non-monotonic effect: small values enhance the signal via rescattering, whereas larger values suppress it by detuning the resonance.
format Preprint
id arxiv_https___arxiv_org_abs_2604_05078
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Gravitational Waves from Matter Perturbations of Spectator Scalar Fields
Garcia, Marcos A. G.
Garcia-Vega, Angel
Verner, Sarunas
High Energy Physics - Phenomenology
Cosmology and Nongalactic Astrophysics
General Relativity and Quantum Cosmology
We compute the stochastic gravitational wave background sourced at second order by a spectator scalar field $χ$ coupled to the inflaton $ϕ$ through a portal interaction $σϕ^2χ^2$ and with quartic self-interaction $λ_χχ^4/4!$. In the large portal coupling regime ($σ/λ\gg 1$, with $λ$ the inflaton normalization), parametric resonance during reheating amplifies the spectator power spectrum by many orders of magnitude near the resonance band until Hartree backreaction from the quartic coupling detunes the instability, while the large inflationary effective mass suppresses superhorizon power and ensures compatibility with CMB isocurvature bounds. We focus on the direct field-gradient source $\partial_aχ\,\partial_bχ$ in the second-order Einstein equations and derive a master formula that factorizes into a spectral integral over the frozen, vacuum-subtracted spectator spectrum and a time integral encoding the post-inflationary expansion history. For our benchmark reheating history we obtain analytic scaling relations, including a peak amplitude $Ω_{\rm GW}\propto T_{\rm reh}^{8/3}$, strong dependence on the portal strength, and weak sensitivity to $m_χ$. We validate the framework against nonlinear lattice simulations, demonstrating complementarity: the Hartree treatment captures superhorizon evolution inaccessible to the lattice, while the lattice resolves rescattering and fragmentation near the spectral peak. For $σ/λ\simeq 10^4$ and $T_{\rm reh}=2 \times 10^{14}\,\mathrm{GeV}$, the signal reaches $Ω_{\rm GW}h^2\sim 10^{-11}$ at $f\sim10^{7}$-$10^{8}\,\mathrm{Hz}$. Increasing $λ_χ$ at fixed $σ$ has a non-monotonic effect: small values enhance the signal via rescattering, whereas larger values suppress it by detuning the resonance.
title Gravitational Waves from Matter Perturbations of Spectator Scalar Fields
topic High Energy Physics - Phenomenology
Cosmology and Nongalactic Astrophysics
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2604.05078