Conferencias y seminarios
Astrophysics Seminar – Prof. Philipp Podsiadlowski "Testing Black-Hole Formation with LIGO: Evidence for a Bimodal Black-Hole Mass Distribution"
Informaciones
- Iniciativa de Datos e Inteligencia Artificial (IDIA)
- idia@uchile.cl
Fecha
Martes 13 de octubre de 2026
Hora
16:15
Lugar
Sala John Von Neumann
(CMM, Edificio Norte, 7th Floor (Beauchef 851))Organiza
We are pleased to invite you to the following Astrophysics Seminar:
Title: Testing Black-Hole Formation with LIGO: Evidence for a Bimodal Black-Hole Mass Distribution
Speaker: Prof. Philipp Podsiadlowski, London Centre for Stellar Astrophysics & University of Oxford.
Date: Tuesday, October 13
Time: 16:15 h
Venue: Sala John Von Neumann, Edificio Norte, 7th Floor (Beauchef 851)
Abstract
Dramatic progress in recent years in our understanding of core-collapse supernovae has, for the first time, allowed us to connect supernova progenitors with their explosions and compact remnants. Among other insights, this framework yields unique predictions for the black-hole mass spectrum, which can be directly tested through LIGO's gravitational-wave detections of binary black-hole mergers.
Specifically, theory predicts a peak in the black-hole mass distribution around 9 solar masses (M☉), driven by late nuclear burning phases—specifically carbon burning and the onset of neon burning—and showing only a weak dependence on metallicity. This leads to a predicted peak in the LIGO chirp-mass distribution around 8 M☉, followed by a distinct gap or deficiency of systems just beyond.
Using the binary population synthesis code COMPAS, we generated detailed predictions for observational rates. The recent release of results from the LIGO/Virgo/KAGRA O4a run brings the total number of detected black-hole mergers to 158. The observed chirp-mass distribution displays a peak-gap structure in striking agreement with our predictions, effectively ruling out several commonly used black-hole formation prescriptions.
This match confirms our foundational understanding of late stellar evolution and key aspects of the core-collapse mechanism. Furthermore, it demonstrates that forming black holes in binaries is significantly more difficult than often assumed in the literature, naturally explaining observational puzzles such as the lack of Be X-ray binaries containing black holes. This lecture will present these findings alongside broader implications for modeling black-hole binary systems.
All interested faculty, researchers, and students are cordially invited to attend. Please feel free to share this invitation with anyone who may be interested.
We look forward to seeing you there.


