Theoretical uncertainties in reconstructing model parameters with gravitational waves from supercooled phase transitions
Maciej Kierkla, Marek Lewicki, Philipp Schicho, Daniel Schmitt, Bogumila Swiezewska
hep-ph, astro-ph.CO, gr-qc, hep-th
Submitted: 2026-07-20
Comments: 32 pages, 6 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: Future interferometers may detect a gravitational-wave (GW) signal from a cosmological first-order phase transition.
Terminology
Abstract
Future interferometers may detect a gravitational-wave (GW) signal from a cosmological first-order phase transition. Reconstructing the underlying particle-physics model from such a signal requires theoretical control over the map from microphysics to the spectrum. For classically scale-invariant extensions of the Standard Model, which generically predict strongly supercooled transitions and strong GW signals, this map depends sensitively on the treatment of quantum and thermal corrections to the nucleation rate. Taking the classically conformal U (1) X model as representative of this class, we scan its parameter space and compare two resummation schemes. The first is a high-temperature effective field theory, matched at two-loop level and including next-to-leading-order corrections to the bounce action, with the nucleation-rate prefactor given by the full one-loop functional determinants. The second is a commonly employed daisy-resummed effective potential, with the prefactor estimated on dimensional grounds. Reconstructing the fundamental model parameters through a Fisher-matrix analysis of injected GW signals at LISA, we find that the daisy-resummation scheme is strongly disfavored, as its theoretical error dominates over the reconstruction uncertainty.
Sources
- The NANOGrav 15-year Data Set: Evidence for a Gravitational-Wave Background
- The second data release from the European Pulsar Timing Array III. Search for gravitational wave signals
- Search for an isotropic gravitational-wave background with the Parkes Pulsar Timing Array
- Searching for the nano-Hertz stochastic gravitational wave background with the Chinese Pulsar Timing Array Data Release I
- The NANOGrav 15-year Data Set: Search for Signals from New Physics
- Cosmological Background Interpretation of Pulsar Timing Array Data
- What is the source of the PTA GW signal?
- Science with the space-based interferometer eLISA. II: Gravitational waves from cosmological phase transitions
- Laser Interferometer Space Antenna
- Cosmology with the Laser Interferometer Space Antenna
- Detecting gravitational waves from cosmological phase transitions with LISA: an update
- Taiji Program: Gravitational-Wave Sources
- Reconstructing the spectral shape of a stochastic gravitational wave background with LISA
- Gravitational waves from first-order phase transitions in LISA: reconstruction pipeline and physics interpretation
- The construction and use of LISA sensitivity curves
- Galactic binary science with the new LISA design
- Spectral separation of the stochastic gravitational-wave background for LISA: observing both cosmological and astrophysical backgrounds
- Spectral separation of the stochastic gravitational-wave background for LISA in the context of a modulated Galactic foreground
- Stochastic gravitational wave background from stellar origin binary black holes in LISA
- Foreground cleaning and template-free stochastic background extraction for LISA
Related papers
- Classification of g-modes for neutron stars with a strong transition: Novel universal relation including slow stable hybrid stars
- Higgsino Dark Matter Interpretation of the LUX-ZEPLIN 248 keV Nuclear-Recoil Event
- A Unified Bogoliubov Approach to Primordial Gravitational Waves: From Inflation to Reheating
- Probing Memory-Burdened Primordial Black Holes with High-Energy Neutrinos
- Enhanced Dark Matter Quantum Sensing via Phase-Space Geometric Interferometry
- Axions as Dark Matter, Dark Energy, and Dark Radiation