Black holes: gravitational engines of discovery
The project aims to explore black holes and compact binaries through gravitational-wave and electromagnetic observations to advance understanding of strong gravity and fundamental physics.
Projectdetails
Introduction
Gravity's unique geometric structure is manifest in strong field regions, especially around black holes. The new-born era of gravitational-wave astronomy and very long baseline interferometry is now providing data from such regions, carrying information about the gravitational interaction in highly dynamical setups. The access to this new and uncharted territory may hold the key to outstanding puzzles, such as the nature of dark matter or the fate of singularities or horizons within a quantum field theory context.
Research Significance
The breakthroughs at the observational and experimental level make strong gravity physics one of this century's most active and exciting fields of research.
Project Proposal
I propose to explore the discovery potential of black holes, a foundational project that will transform the field into data-driven research with solid theoretical foundations. This coordinated program will:
- Study and test the strong-field regime of gravity and the matter content of our universe.
- Explore comprehensively the potential of black holes and compact binaries to perform spectroscopy and to strengthen the black hole paradigm.
- Ascertain the evidence for black holes, providing new and robust tools to quantify their existence with electromagnetic and gravitational-wave observations.
- Undertake a systematic study of environmental effects, including the ability for new observations to study the host galaxy.
- Constrain the existence of new fundamental ultralight fields in our universe to unprecedented levels.
The project aims to implement pipelines for its realization in planned and ongoing missions.
Expected Outcomes
The proposed program will significantly advance our knowledge of Einstein's field equations and their role in foundational questions, as well as the interplay with high energy, astro, and particle physics. This is a multidisciplinary program with an impact on our understanding of gravity at all scales.
Financiële details & Tijdlijn
Financiële details
Subsidiebedrag | € 1.944.825 |
Totale projectbegroting | € 1.944.825 |
Tijdlijn
Startdatum | 1-12-2022 |
Einddatum | 30-11-2027 |
Subsidiejaar | 2022 |
Partners & Locaties
Projectpartners
- IST-ID ASSOCIACAO DO INSTITUTO SUPERIOR TECNICO PARA A INVESTIGACAO E O DESENVOLVIMENTOpenvoerder
Land(en)
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Holography in the Gravitational Wave Era
This project aims to enhance understanding of quantum matter and gravity through holography, focusing on cosmological phase transitions, neutron star mergers, and spacetime singularities.
Dynamical Formation of Black Hole Mergers
This ERC research program aims to advance gravitational wave astrophysics by developing tools and methods to investigate binary black hole mergers and their formation in dense stellar environments.
Black Hole Horizons in Quantum Gravity
The project investigates black holes and the information paradox in quantum gravity using Jackiw-Teitelboim models to derive quantitative insights and explore universal techniques for understanding horizons.
High-Precision Gravitational Wave Physics from a Worldline Quantum Field Theory
This project aims to enhance the precision of gravitational wave predictions from black hole and neutron star mergers using a novel quantum formalism to test Einstein's gravity in extreme conditions.
The Celestial Road to a Holographic Description of Black Holes
This project aims to develop a holographic description of quantum gravity in asymptotically flat spacetimes to better understand black hole entropy and information flow using novel symmetry principles.