SHARP VIII: J0924+0219 lens mass distribution and time-delay prediction through adaptive-optics imaging
Abstract
Strongly lensed quasars can provide measurements of the Hubble constant () independent of any other methods. One of the key ingredients is exquisite high-resolution imaging data, such as Hubble Space Telescope (HST) imaging and adaptive-optics (AO) imaging from ground-based telescopes, which provide strong constraints on the mass distribution of the lensing galaxy. In this work, we expand on the previous analysis of three time-delay lenses with AO imaging (RXJ1131-1231, HE0435-1223, and PG1115+080), and perform a joint analysis of J0924+0219 by using AO imaging from the Keck Telescope, obtained as part of the SHARP (Strong lensing at High Angular Resolution Program) AO effort, with HST imaging to constrain the mass distribution of the lensing galaxy. Under the assumption of a flat CDM model with fixed , we show that by marginalizing over two different kinds of mass models (power-law and composite models) and their transformed mass profiles via a mass-sheet transformation, we obtain days, days, and days, where is the dimensionless Hubble constant and is the scaled dimensionless velocity dispersion. Future measurements of time delays with 10% uncertainty and velocity dispersion with 5% uncertainty would yield a constraint of % precision.
Keywords
Cite
@article{arxiv.2107.10304,
title = {SHARP VIII: J0924+0219 lens mass distribution and time-delay prediction through adaptive-optics imaging},
author = {Geoff C. -F. Chen and Christopher D. Fassnacht and Sherry H. Suyu and Léon V. E. Koopmans and David J. Lagattuta and John P. McKean and Matt W. Auger and Simona Vegetti and Tommaso Treu},
journal= {arXiv preprint arXiv:2107.10304},
year = {2022}
}
Comments
11 pages, 7 figures