TY - JOUR
T1 - Varstrometry for Off-nucleus and Dual Subkiloparsec Active Galactic Nuclei (VODKA)
T2 - Investigating the Nature of SDSS J0823+2418 at z = 1.81, A Likely Lensed Quasar
AU - Gross, Arran C.
AU - Chen, Yu Ching
AU - Foord, Adi
AU - Liu, Xin
AU - Shen, Yue
AU - Oguri, Masamune
AU - Goulding, Andy
AU - Hwang, Hsiang Chih
AU - Zakamska, Nadia L.
AU - Ma, Yilun
AU - Nolan, Liam
N1 - We thank the anonymous referee for constructive suggestions that improved the manuscript. We thank A. Kemball for helpful discussions on strong gravitational lensing, as well as Junyao Li and Ming-Yang Zhuang for helpful discussions on PSF modeling and image decomposition. We also thank M. Leveille, A. Vick, R. Campbell, R. McGurk, J. Cortes, T. R. Geballe, S. Leggett, A. Nitta, T. Seccull, and H. Medlin for their help with our HST, Keck, Gemini, and VLA observations. H.-C.H. appreciates the discussion with Ting-Wen Lan on the foreground Mg ii absorption. This work is supported by NSF grant AST-2108162. Y.S. acknowledges partial support from NSF grant AST-2009947. A.D.G. acknowledges support from NSF/AAG grant 1007094. Support for program 23700377 (PI: X. Liu) was provided by the National Aeronautics and Space Administration through Chandra award No. GO2-23099X issued by the Chandra X-ray Center, which is operated by the Smithsonian Astrophysical Observatory for and on behalf of the National Aeronautics Space Administration under contract NAS8-03060. Support for program No. HST-GO-15900 (PI: H. Hwang), HST-GO-16210, and HST-GO-16892 (PI: X. Liu) was provided by NASA through grants from the Space Telescope Science Institute, which is operated by the Association of Universities for Research in Astronomy, Incorporated, under NASA contract NAS5-26555. This work was supported by JSPS KAKENHI grant Nos. JP22H01260, JP20H05856, and JP20H00181.
This work is based in part on data obtained at the W. M. Keck Observatory, which is operated as a scientific partnership among the California Institute of Technology, the University of California, and the National Aeronautics and Space Administration. The Observatory was made possible by the generous financial support of the W. M. Keck Foundation. This research has made use of the Keck Observatory Archive (KOA), which is operated by the W. M. Keck Observatory and the NASA Exoplanet Science Institute (NExScI), under contract with the National Aeronautics and Space Administration. The authors wish to recognize and acknowledge the very significant cultural role and reverence that the summit of Maunakea has always had within the indigenous Hawaiian community. We are most fortunate to have the opportunity to conduct observations from this mountain.
This work is based in part on observations obtained at the international Gemini Observatory (program ID GN-2022A-Q-139; PI: X. Liu), a program of NSF's NOIRLab, which is managed by the Association of Universities for Research in Astronomy (AURA) under a cooperative agreement with the National Science Foundation, and on behalf of the Gemini Observatory partnership: the National Science Foundation (United States), National Research Council (Canada), Agencia Nacional de Investigación y Desarrollo (Chile), Ministerio de Ciencia, Tecnología e Innovación (Argentina), Ministério da Ciência, Tecnologia, Inovações e Comunicações (Brazil), and Korea Astronomy and Space Science Institute (Republic of Korea). This work was enabled by observations made from the Gemini North telescope, located within the Maunakea Science Reserve and adjacent to the summit of Maunakea. We are grateful for the privilege of observing the Universe from a place that is unique in both its astronomical quality and its cultural significance.
PY - 2023/10/1
Y1 - 2023/10/1
N2 - Dual quasars at small physical separations are an important precursor phase of galaxy mergers, ultimately leading to the coalescence of the two supermassive black holes. Starting from a sample of dual and/or lensed quasar candidates discovered using astrometric jitter in Gaia data, we present a pilot case study of one of the most promising yet puzzling candidate dual quasars at cosmic noon (z ∼ 1.8). Using multiwavelength imaging and spectroscopy from X-ray to radio, we test whether the SDSS J0823+2418 system is two individual quasars in a bound pair at separation ∼0.″64, or instead a single quasar being gravitationally lensed by a foreground galaxy. We find consistent flux ratios (∼1.25−1.45) between the two sources in optical, near-IR (NIR), UV, and radio, and thus similar spectral energy distributions, suggesting a strong-lensing scenario. However, differences in the radio spectral index, as well as changing X-ray fluxes, hint at either a dual quasar with otherwise nearly identical properties or perhaps lensing-based time lag of ∼3 days paired with intrinsic variability. We find with lens mass modeling that the relative NIR positions and magnitudes of the two quasars and a marginally detected central galaxy are consistent with strong lensing. Archival Sloan Digital Sky Survey spectra likewise suggest a foreground absorber via Mg ii absorption lines. We conclude that SDSS J0823+2418 is likely a lensed quasar, and therefore that the VODKA sample contains a population of these lensed systems (perhaps as high as 50%) as well as dual quasars.
AB - Dual quasars at small physical separations are an important precursor phase of galaxy mergers, ultimately leading to the coalescence of the two supermassive black holes. Starting from a sample of dual and/or lensed quasar candidates discovered using astrometric jitter in Gaia data, we present a pilot case study of one of the most promising yet puzzling candidate dual quasars at cosmic noon (z ∼ 1.8). Using multiwavelength imaging and spectroscopy from X-ray to radio, we test whether the SDSS J0823+2418 system is two individual quasars in a bound pair at separation ∼0.″64, or instead a single quasar being gravitationally lensed by a foreground galaxy. We find consistent flux ratios (∼1.25−1.45) between the two sources in optical, near-IR (NIR), UV, and radio, and thus similar spectral energy distributions, suggesting a strong-lensing scenario. However, differences in the radio spectral index, as well as changing X-ray fluxes, hint at either a dual quasar with otherwise nearly identical properties or perhaps lensing-based time lag of ∼3 days paired with intrinsic variability. We find with lens mass modeling that the relative NIR positions and magnitudes of the two quasars and a marginally detected central galaxy are consistent with strong lensing. Archival Sloan Digital Sky Survey spectra likewise suggest a foreground absorber via Mg ii absorption lines. We conclude that SDSS J0823+2418 is likely a lensed quasar, and therefore that the VODKA sample contains a population of these lensed systems (perhaps as high as 50%) as well as dual quasars.
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U2 - 10.3847/1538-4357/acf469
DO - 10.3847/1538-4357/acf469
M3 - Article
AN - SCOPUS:85175800643
SN - 0004-637X
VL - 956
JO - Astrophysical Journal
JF - Astrophysical Journal
IS - 2
M1 - 117
ER -