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  4. Exploring waveforms with non-GR deviations for extreme mass-ratio inspirals
 
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Exploring waveforms with non-GR deviations for extreme mass-ratio inspirals

Source
Journal of Cosmology and Astroparticle Physics
Date Issued
2024-10-01
Author(s)
Kumar, Shailesh
Singh, Rishabh Kumar
Chowdhuri, Abhishek
Bhattacharyya, Arpan  
DOI
10.1088/1475-7516/2024/10/047
Volume
2024
Issue
10
Abstract
The fundamental process of detecting and examining the polarization modes of gravitational waves plays a pivotal role in enhancing our grasp on the precise mechanisms behind their generation. A thorough investigation is essential for delving deeper into the essence of gravitational waves and rigorously evaluating and validating the range of modified gravity theories. In this line of interest, a general description of black holes in theories beyond general relativity can serve a meaningful purpose where distinct deviation parameters can be mapped to solutions representing distinct theories. Employing a refined version of the deformed Kerr geometry, which is free from pathological behaviours such as unphysical divergences in the metric, we explore an extreme mass-ratio inspiral system, wherein a stellar-mass object perturbs a supermassive black hole. We compute the effects of deformation parameters on the rate of change of orbital energy and angular momentum, orbital evolution and phase dynamics with leading order post-Newtonian corrections. With the waveform analysis, we assess the plausibility of detecting deviations from general relativity through observations facilitated by the Laser Interferometer Space Antenna (LISA), simultaneously constraining the extent of these deviations. Therefore, this analysis provides an understanding while highlighting the essential role of observations in advancing gravitational phenomena beyond general relativity.
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URI
http://repository.iitgn.ac.in/handle/IITG2025/28721
Subjects
and 2-body problem in GR and beyond | Equations of motion | gravitational waves / theory | Gravitational waves in GR and beyond: theory | modified gravity
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