A light in the dark: searching for electromagnetic counterparts to black hole-black hole mergers in LIGO/Virgo O3 with the Zwicky Transient Facility
Matthew J. Graham, Barry McKernan, K. E. Saavik Ford, Daniel Stern, S., G. Djorgovski, Michael Coughlin, Kevin B. Burdge, Eric C. Bellm, George, Helou, Ashish A. Mahabal, Frank J. Masci, Josiah Purdum, Philippe Rosnet, Ben, Rusholme

TL;DR
This paper searches for electromagnetic signals from black hole mergers in active galactic nuclei during LIGO/Virgo O3, identifying nine candidates and discussing implications for future detections and cosmology.
Contribution
It introduces a method to identify potential EM counterparts to BBH mergers in AGN using ZTF data and analyzes the significance and implications of these candidates.
Findings
Nine candidate EM counterparts identified with p-value 0.019
Two candidates associated with high-mass mergers > 100M_
Estimated ew detectable EM counterparts expected in O3
Abstract
The accretion disks of active galactic nuclei (AGN) are promising locations for the merger of compact objects detected by gravitational wave (GW) observatories. Embedded within a baryon-rich, high density environment, mergers within AGN are the only GW channel where an electromagnetic (EM) counterpart must occur (whether detectable or not). Considering AGN with unusual flaring activity observed by the Zwicky Transient Facility (ZTF), we describe a search for candidate EM counterparts to binary black hole (BBH) mergers detected by LIGO/Virgo in O3. After removing probable false positives, we find nine candidate counterparts to BBH mergers mergers during O3 (seven in O3a, two in O3b) with a -value of 0.019. Based on ZTF sky coverage, AGN geometry, and merger geometry, we expect potentially detectable EM counterparts from O3, where $N_{\rm…
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