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Reconstructing primordial curvature perturbations via scalar-induced gravitational waves with LISA

  • Jonas El Gammal
  • , Aya Ghaleb
  • , Gabriele Franciolini
  • , Theodoros Papanikolaou
  • , Marco Peloso
  • , Gabriele Perna
  • , Mauro Pieroni
  • , Angelo Ricciardone
  • , Robert Rosati
  • , Gianmassimo Tasinato
  • , Matteo Braglia
  • , Jacopo Fumagalli
  • , Jun'ya Kume
  • , Enrico Morgante
  • , Germano Nardini
  • , Davide Racco
  • , Sébastien Renaux-Petel
  • , Hardi Veermäe
  • , Denis Werth
  • , Ivonne Zavala
  • Department of Mathematics and Physics
  • University of Stavanger
  • Department of Physics
  • Swansea University
  • Theoretical Physics Department
  • European Organization for Nuclear Research
  • Scuola Superiore Meridionale
  • INFN Sezione di Napoli
  • National Observatory of Athens
  • University of Padova
  • INFN
  • University of Pisa
  • Istituto Nazionale di Fisica Nucleare, Sezione di Pisa
  • NASA Marshall Space Flight Center
  • University of Bologna
  • INFN Sezione di Bologna
  • New York University
  • Departement de Física Quàntica i Astrofisica
  • University of Barcelona
  • Graduate School of Science
  • Research Center for the Early Universe
  • University of Trieste
  • INFN Sezione di Trieste
  • ETH Zurich
  • Physik-Institut der Universität Zürich
  • Institut d’Astrophysique de Paris
  • Keemilise ja Bioloogilise Füüsika Instituut

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

26 Citations (Scopus)

Résumé

Many early universe scenarios predict an enhancement of scalar perturbations at scales currently unconstrained by cosmological probes. These perturbations source gravitational waves (GWs) at second order in perturbation theory, leading to a scalar-induced gravitational wave (SIGW) background. The LISA detector, sensitive to mHz GWs, will be able to constrain curvature perturbations in a new window corresponding to scales k ∈ [1010, 1014] Mpc-1, difficult to probe otherwise. In this work, we forecast the capabilities of LISA to constrain the source of SIGWs using different approaches: i) agnostic, where the spectrum of curvature perturbations is binned in frequency space; ii) template-based, modeling the curvature power spectrum based on motivated classes of models; iii) ab initio, starting from first-principles model of inflation featuring an ultra-slow roll phase. We compare the strengths and weaknesses of each approach. We also discuss the impact on the SIGW spectrum of non-standard thermal histories affecting the kernels of SIGW emission and non-Gaussianity in the statistics of the curvature perturbations. Finally, we propose simple tests to assess whether the signal is compatible with the SIGW hypothesis. The pipeline used is built into the SIGWAY code.

langue originaleAnglais
Numéro d'article062
journalJournal of Cosmology and Astroparticle Physics
Volume2025
Numéro de publication5
Les DOIs
étatPublié - 1 mai 2025
Modification externeOui

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