Detectability of microlensed gravitational waves

Author:

Yeung Simon M C12,Cheung Mark H Y3,Seo Eungwang14,Gais Joseph A J1,Hannuksela Otto A1,Li Tjonnie G F156

Affiliation:

1. Department of Physics, The Chinese University of Hong Kong , Shatin, N.T. , Hong Kong

2. University of Wisconsin-Milwaukee , Milwaukee, WI 53202 , USA

3. William H. Miller III Department of Physics and Astronomy, Johns Hopkins University , 3400 North Charles Street, Baltimore, Maryland 21218 , USA

4. SUPA, School of Physics and Astronomy, University of Glasgow , Glasgow G12 8QQ , United Kingdom

5. Institute for Theoretical Physics , KU Leuven, Celestijnenlaan 200D, B-3001 Leuven , Belgium

6. Department of Electrical Engineering (ESAT) , KU Leuven, Kasteelpark Arenberg 10, B-3001 Leuven , Belgium

Abstract

ABSTRACT Gravitational lensing describes the bending of the trajectories of light and gravitational waves due to the gravitational potential of a massive object. Strong lensing by galaxies can create multiple images with different overall amplifications, arrival times, and image types. If, furthermore, the gravitational wave encounters a star along its trajectory, microlensing will take place. Previously, it has been shown that the effects of microlenses on strongly-lensed type-I images could be negligible in practice, at least in the low magnification regime. In this work, we study the same effect on type-II strongly-lensed images by computing the microlensing amplification factor. As opposed to being magnified, type-II images are typically demagnified. Moreover, microlensing on top of type-II images induces larger mismatches with un-microlensed waveforms than type-I images. These results are broadly consistent with recent literature and serve to confirm the findings. In addition, we investigate the possibility of detecting and analysing microlensed signals through Bayesian parameter estimation with an isolated point mass lens template, which has been adopted in recent parameter estimation literature. In particular, we simulate gravitational waves microlensed by a microlens embedded in a galaxy potential near moderately magnified type-I and II macroimages, with variable lens masses, source parameters and macromagnifcations. Generally, an isolated point mass model could be used as an effective template to detect a type-II microlensed image but not for type-I images, demonstrating the necessity for more realistic microlensing search templates.

Funder

NSF

NASA

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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