Investigating the Memory Effect in Neutron Star Mergers
Brabant, Thomas
Promotor(s) :
Marion, Pillas
;
Cudell, Jean-René
Date of defense : 24-Jun-2026/26-Jun-2026 • Permalink : http://hdl.handle.net/2268.2/25509
Details
| Title : | Investigating the Memory Effect in Neutron Star Mergers |
| Translated title : | [fr] Étude de l'Effet Mémoire dans les Fusions d'Étoiles à Neutrons |
| Author : | Brabant, Thomas
|
| Date of defense : | 24-Jun-2026/26-Jun-2026 |
| Advisor(s) : | Marion, Pillas
Cudell, Jean-René
|
| Committee's member(s) : | Rauw, Grégor
Fays, Maxime
|
| Language : | English |
| Number of pages : | 112 |
| Keywords : | [en] Gravitational Waves [en] General Relativity [en] GW170817 [en] Gamma-ray burst [en] Neutron Star [en] Signal Processing |
| Discipline(s) : | Physical, chemical, mathematical & earth Sciences > Space science, astronomy & astrophysics |
| Institution(s) : | Université de Liège, Liège, Belgique |
| Degree: | Master en sciences spatiales, à finalité approfondie |
| Faculty: | Master thesis of the Faculté des Sciences |
Abstract
[en] This master thesis investigates the gravitational wave memory effect, a prediction
of general relativity, characterized by a permanent displacement in spacetime geometry.
While this effect remains undetected, next-generation detectors such as the Einstein Telescope
(ET) and the Laser Interferometer Space Antenna (LISA) are poised to enable its
first observation. This work focuses on modeling and estimating the nonlinear & linear
memory effect generated by neutron star mergers. By assessing its detectability across
both instruments, I demonstrate that a memory signal in ET would be resolvable for
an event analogous to the landmark multi-messenger discovery of August 17, 2017. Furthermore,
a dedicated analysis of the memory effect from gamma-ray bursts shows that
detection with ET and LISA is achievable in principle, yet sensitive to the modeling and
requires a combination of several extreme physical characteristics.
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