GWnucleus · Unveiling Gravitational Waves from Galactic Nuclei
Horizon Europe — Marie Skłodowska-Curie Actions
- Duration
- 2023-04-01 → 2025-03-31
- EU contribution
- €230,774
- Participants
- 1
- Scheme
- HORIZON-TMA-MSCA-PF-EF
Lines connect the coordinator with its partners.
Results in brief
Unveiling Gravitational Waves from Galactic Nuclei
Gravitational wave (GW) astronomy has revolutionized our view of the Universe by providing direct evidence of the coalescence of compact-object binaries, such as black holes and neutron stars. Since the first detection in 2015, over 90 GW events have been recorded, yet the astrophysical origin of these sources remains unclear. This fundamental uncertainty hampers our ability to interpret the observed population and forecast the discoveries expected from next-generation detectors like the Einstein Telescope and LISA. Current models suggest two broad pathways for binary formation: isolated evolution of stellar pairs and dynamical assembly in dense stellar environments. However, both fail to fully explain the observed properties of GW sources, such as their masses, spins, and eccentricities. This has highlighted the need to explore alternative environments, particularly galactic nuclei — regions hosting supermassive black holes surrounded by dense stellar populations and, in some cases, gas disks associated with active galactic nuclei (AGNs). These extreme environments can facilitate the formation and merger of compact-object binaries through mechanisms such as gravitational perturbations, gas drag, and multi-body interactions. The GWnucleus project addresses this gap by systematically investigating the role of galactic nuclei in shaping GW sources. The project develops a new generation of computational models that combine high-precision N-body dynamics with fast Monte Carlo simulations, tailored to account for the complex physics of dense stellar environments and AGN disks. By simulating millions of binary systems across a wide range of conditions, GWnucleus will build mock catalogs of GW sources that can be directly compared with real observations. The project is structured around three main objectives. First, it quantifies how gravitational perturbations from the central black hole and surrounding stars influence binary evolution. Second, it models the effects of gas physics in AGN disks, such as migration and disk-induced torques. Third, it connects these theoretical models with current GW observations through population synthesis and Bayesian inference, providing a framework to assess the likelihood that a given observed GW event originated in a galactic nucleus. The expected impact of GWnucleus is significant. It will deliver an open-source simulation framework and public data products, enabling researchers to explore a new formation channel for GW sources. This contributes directly to the goals of the European Research Area in fostering open science, interdisciplinary collaboration, and data-driven discovery. By improving our understanding of compact-object mergers, GWnucleus also supports broader astrophysical questions, including galaxy evolution, stellar dynamics, and the formation of supermassive black holes. In a broader context, the project aligns with strategic European priorities in space science and research infrastructures, complementing the scientific missions of upcoming observatories. It also contributes to public engagement through scientific outreach, visualizations, and open-access dissemination of results. By combining innovative computational techniques with pressing scientific questions, GWnucleus stands at the frontier of gravitational-wave astrophysics and aims to transform our understanding of where and how the most extreme objects in the Universe are born.
Data: CORDIS, © European Union
Project objective
To date, the mechanisms that trigger the formation and gravitational wave (GW) coalescence of compact-object (CO, black holes, neutron stars, white dwarfs) binaries are still unknown. Two main formation scenarios have been proposed, primordial and dynamically-formed binaries, but both appear in tension with data. Galactic nuclei are a promising nursery for GW merger events, because of their high stellar density and the presence of a central massive black hole (MBH). Numerical simulations represent an ideal tool to model COs in galactic nuclei, but the current literature misses several key features which are needed to fully capture the complex physics involved. The GWnucleus project aims at filling this gap, by answering to the question: how do galactic nuclei shape the properties of gravitational waves (GW) sources? I will achieve this goal by developing an innovative hybrid Monte-Carlo/N-body model for simulating COs in galactic nuclei, at the Theoretical Astrophysics group of the Niels Bohr International Academy (NBIA), led by Prof. Martin Pessah. This novel framework will finally provide a complete understanding of GW progenitors' evolution in galactic nuclei, and establish a new theoretical model to interpret (present) and predict (forthcoming) GW observations.
Original text from CORDIS.
Participants
- KOBENHAVNS UNIVERSITET · KOBENHAVNCoordinatorDenmark
Links
- View on CORDIS
- DOI: 10.3030/101103134
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51e903df0&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51e904454&appId=PPGMS
Data: CORDIS, © European Union
