Towards asteroseismology of core-collapse supernovae with gravitational-wave observations - II. Spacetime perturbations
Alejandro Torres-Forn\'e, Pablo Cerd\'a-Dur\'an, Andrea Passamonti,, Martin Obergaulinger, Jos\'e A. Font

TL;DR
This paper introduces an advanced method to compute spacetime eigenmodes of proto-neutron stars in core-collapse supernovae, improving GW signal predictions and aiding asteroseismology with gravitational-wave observations.
Contribution
It develops a new general relativistic eigenmode computation method including spacetime perturbations and a classification algorithm, enhancing GW signal analysis accuracy.
Findings
Eigenfrequencies match observed GW features
Most GW energy is in low-order eigenmodes
Low-frequency GW component is the fundamental f-mode
Abstract
Improvements in ground-based, advanced gravitational wave (GW) detectors may allow in the near future to observe the GW signal of a nearby core-collapse supernova. For the most common type of progenitors, likely with slowly rotating cores, the dominant GW emission mechanisms are the post-bounce oscillations of the proto-neutron star (PNS) before the explosion. We present a new procedure to compute the eigenmodes of the system formed by the PNS and the stalled accretion shock in general relativity including spacetime perturbations. The new method improves on previous results by accounting for perturbations of both the lapse function and the conformal factor. We apply our analysis to two numerical core-collapse simulations and show that our improved method is able to obtain eigenfrequencies that accurately match the features observed in the GW signal and to predict the qualitative…
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