Detecting Accelerating Eccentric Binaries in the LISA Band
Zeyuan Xuan, Smadar Naoz, Xian Chen

TL;DR
This paper develops analytical and numerical methods to detect and measure the acceleration of eccentric compact binaries in the LISA gravitational wave band, improving detection sensitivity and parameter estimation accuracy.
Contribution
It introduces new GW templates for accelerating eccentric binaries, enabling better disentanglement of acceleration effects and significantly enhancing measurement precision.
Findings
Eccentricity improves acceleration detection by a factor of 10-100.
Relativistic precession helps distinguish acceleration-induced frequency shifts.
Acceleration can be measured even if it remains constant during observation.
Abstract
Many gravitational wave (GW) sources in the LISA band are expected to have non-negligible eccentricity. Furthermore, many of them can undergo acceleration because they reside in the presence of a tertiary. Here we develop analytical and numerical methods to quantify how the compact binary's eccentricity enhances the detection of its peculiar acceleration. We show that the general relativistic precession pattern can disentangle the binary's acceleration-induced frequency shift from the chirp-mass-induced frequency shift in GW template fitting, thus relaxing the signal-to-noise ratio requirement for distinguishing the acceleration by a factor of . Moreover, by adopting the GW templates of the accelerating eccentric compact binaries, we can enhance the acceleration measurement accuracy by a factor of , compared to the zero-eccentricity case, and detect the source's…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Radio Astronomy Observations and Technology · Geophysics and Sensor Technology
