Detecting Cosmological Stasis with Future Gravitational Wave Observatories
Gabriela Barenboim, Anne-Katherine Burns
hep-ph, astro-ph.CO, gr-qc
Submitted: 2026-07-20
Comments: 43 pages, 22 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: We map the observational predictions of cosmological stasis in the inflationary gravitational wave background onto the sensitivity bands of current and planned gravitational wave detectors.
Terminology
Abstract
We map the observational predictions of cosmological stasis in the inflationary gravitational wave background onto the sensitivity bands of current and planned gravitational wave detectors. Using the closed-form piecewise spectral template derived in the companion paper, we generate detectability maps for four stasis scenarios: canonical, dynamical scalar, vacuum-energy/matter, and vacuum-energy/radiation across the frequency bands probed by NANOGrav, SKA, LISA, DECIGO, BBO, the Einstein Telescope, and Cosmic Explorer. For scenarios in which the spectrum is suppressed, w s < 1/3, the stasis feature is detectable by BBO in the region of (w s, N) parameter space in which w s 0.2 for tensor-to-scalar ratios close to the Planck upper limit, r = 0.036. For scenarios in which the spectrum is enhanced, w s > 1/3, the stasis feature is detectable by BBO across the entire (w s, N) parameter space for tensor-to-scalar ratios of O(0.01). We characterize the Standard Model (SM) g* fine structure of the IGWB, showing that SM phase transitions introduce spectral steps of about 20% (electroweak, at about 2.6 times10-6 Hz) and about 53% (QCD, at about 3.6 times 10-9 Hz). For stasis scenarios with end-of-stasis temperatures below the QCD scale these steps fall inside the stasis band and constitute additional spectral features that complement the primary signature. Finally, we model the finite-width end-of-stasis transition phenomenologically, demonstrating that the spectral break at f end is smoothed over a log-frequency window N trans times 3(1+w s)/4, and that the consistency relation C 2=C 2(alpha) remains testable provided N stasis N trans, a condition easily satisfied for all scenarios of phenomenological interest.
Sources
- Gravitational Wave Signatures of Cosmological Stasis: A Unified Spectral Template
- Stasis in an Expanding Universe: A Recipe for Stable Mixed-Component Cosmological Eras
- Primordial Black Holes Place the Universe in Stasis
- Primordial Black Holes and their Mass Spectra: The Effects of Mergers and Accretion within Stasis Cosmologies
- Cosmological Stasis from Dynamical Scalars: Tracking Solutions and the Possibility of a Stasis-Induced Inflation
- Cosmological Stasis from a Single Annihilating Particle Species: Extending Stasis Into the Thermal Domain
- Betwixt Annihilation and Decay: The Hidden Structure of Cosmological Stasis
- Cosmological Stasis from Field-Dependent Decay
- Setting up stasis with gravitational interactions
- On the Generality and Persistence of Cosmological Stasis
- Probing the early universe with inflationary gravitational waves
- Planck 2018 results. X. Constraints on inflation
- BICEP / Keck XIII: Improved Constraints on Primordial Gravitational Waves using Planck, WMAP, and BICEP/Keck Observations through the 2018 Observing Season
- Improved Calculation of the Primordial Gravitational Wave Spectrum in the Standard Model
- Standard Model thermodynamics across the electroweak crossover
- New Sensitivity Curves for Gravitational-Wave Signals from Cosmological Phase Transitions
- The NANOGrav 12.5-year Data Set: Search For An Isotropic Stochastic Gravitational-Wave Background
- Common-red-signal analysis with 24-yr high-precision timing of the European Pulsar Timing Array: Inferences in the stochastic gravitational-wave background search
- Gravitational wave astronomy with the SKA
- Laser Interferometer Space Antenna
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