Models of the Cosmic Horseshoe Gravitational Lens
arXiv:0804.4002 · doi:10.1111/j.1365-2966.2008.13401.x
Abstract
We model the extremely massive and luminous lens galaxy in the Cosmic Horseshoe Einstein ring system, recently discovered in the Sloan Digital Sky Survey. We use the semi-linear method of Warren & Dye (2003), which pixelises the source surface brightness distribution, to invert the Einstein ring for sets of parameterised lens models. Here, the method is refined by exploiting Bayesian inference to optimise adaptive pixelisation of the source plane and to choose between three differently parameterised models: a singular isothermal ellipsoid, a power law model and a NFW profile. The most probable lens model is the power law with a volume mass density that scales as r^(-1.96+/-0.02) and an axis ratio of ~0.8. The mass within the Einstein ring (i.e., within a cylinder with projected distance of ~30 kpc from the centre of the lens galaxy) is (5.02+/-0.09)*10^12 M_solar, and the mass-to-light ratio is ~30. Even though the lens lies in a group of galaxies, the preferred value of the external shear is almost zero. This makes the Cosmic Horseshoe unique amongst large separation lenses, as almost all the deflection comes from a single, very massive galaxy with little boost from the environment.
Accepted by MNRAS. 9 pages, 4 figures
References in corpus (2)
Cited by in corpus (27)
- The Halos of Satellite Galaxies: the Companion of the Massive Elliptical Lens SL2S J08544-0121
- Rest-Frame Optical Spectra of Three Strongly Lensed Galaxies at z~2
- Feedback from central black holes in elliptical galaxies. I: models with either radiative or mechanical feedback but not both
- Two New Large Separation Gravitational Lenses from SDSS
- Lens Models of Herschel-Selected Galaxies From High-Resolution Near-IR Observations
- AGN feedback in an isolated elliptical galaxy: the effect of strong radiative feedback in the kinetic mode
- Automated galaxy-galaxy strong lens modelling: no lens left behind
- Abell 1201: Detection of an Ultramassive Black Hole in a Strong Gravitational Lens
- Two-component galaxies with flat rotation curve
- Systematic errors induced by the elliptical power-law model in galaxy-galaxy strong lens modeling
- Star formation histories from multi-band photometry: A new approach
- The Herschel-ATLAS: magnifications and physical sizes of m-selected strongly lensed galaxies
- SLITronomy: towards a fully wavelet-based strong lensing inversion technique
- Two-component Jaffe models with a central black hole. I: the spherical case
- Gravitational Microlensing: A parallel, large-data implementation
- Shape, shear & flexion: An analytic flexion formalism for realistic mass profiles
- The evolution of late-type galaxies from CASSOWARY lensing systems
- Large-scale dynamics of winds originated from black hole accretion flows: (I) Hydrodynamics
- Zooming into the Cosmic Horseshoe: new insights on the lens profile and the source shape
- Galaxy mass profiles from strong lensing I: The circular power-law model
- Detection of Strongly Lensed Arcs in Galaxy Clusters with Transformers
- Unlensing HST Observations of the Einstein Ring 1RXS J1131-1231: A Bayesian Analysis
- Unveiling a 36 Billion Solar Mass Black Hole at the Centre of the Cosmic Horseshoe Gravitational Lens
- Probing General Relativity in galactic scales at z
- Pixel-level modelling of group-scale strong lens CASSOWARY 19
- Systematics in ETG Mass Profile Modelling: Strong Lensing & Stellar Dynamics
- Lensed stars in galaxy-galaxy strong lensing -- a JWST prediction for the Cosmic Horseshoe