Strong Lensing as a Probe of the Mass Distribution Beyond the Einstein Radius. Mass & Light in SL2S J08544-0121, a Galaxy Group at z=0.35
arXiv:0906.4118 · doi:10.1051/0004-6361/200912747
Abstract
Precise modelling of strong lensing systems can be affected by external mass distributions, e.g. the group or cluster within which the lens is embedded. In this article, we propose to turn this limitation to our advantage and to use precise strong lensing modelling to probe external mass distributions surrounding the lens. We consider SL2S J08544-0121, a galaxy group at z=0.35 that contains a strong lensing system. A simple elliptical isothermal potential cannot reproduce satisfactorily the strong lensing constraints. We include an external mass perturbation corresponding to the group within which the lens is embedded. The lensing properties of this perturbation are parametrised by its total mass M and a smoothing scale s that quantifies the characteristic scale over which M is distributed. For a range of these parameters, we are able to reproduce accurately the observations. This suggests that light is a good tracer of mass. Interestingly, this also shows that a localised strong lensing analysis (on scales of ~10") allows us to constrain global properties of the group as a whole (on scales of ~100). Indeed, we constrain the group mass-to-light ratio to be M/L=98+-27 (i band, solar units, not corrected for evolution) and s=20" +- 9 (2sigma confidence level). We demonstrate that these strong lensing only constraints are due to the perturbed strong lensing configuration, where the main arc is located at ~5" from the galaxy, whereas its counter-image is found at ~8". To test independently our resulting strong lensing model, we pursue an independent weak lensing analysis of the group and find a mass-to-light ratio in the range 66-146 (1sigma confidence level).
accepted for publication in AandA
References in corpus (13)
- A Bayesian approach to strong lensing modelling of galaxy clusters
- The Sloan Lens ACS Survey. III - The Structure and Formation of Early-type Galaxies and their Evolution since z~1
- A Bayesian analysis of regularised source inversions in gravitational lensing
- Multi-scale cluster lens mass mapping I. Strong Lensing modelling
- The Sloan Lens ACS Survey. VIII. The relation between environment and internal structure of early-type galaxies
- Models of the Cosmic Horseshoe Gravitational Lens
- The Gravitational Lens -- Galaxy Group Connection. II. Groups Associated with B2319+051 and B1600+434
- Lens Galaxy Properties of SBS1520+530: Insights from Keck Spectroscopy and AO Imaging
- Five New High-Redshift Quasar Lenses from the Sloan Digital Sky Survey
- Meso-structure in three strong-lensing systems
- Mass models and environment of the new quadruply lensed quasar SDSS J1330+1810
- Separation of the visible and dark matter in the Einstein ring LBG J213512.73-010143
- A twelve-image gravitational lens system in the z ~ 0.84 cluster Cl J0152.7-1357
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- Lens Modeling Abell 370: Crowning the Final Frontier Field with MUSE
- Hubble Frontier Fields: systematic errors in strong lensing models of galaxy clusters - Implications for cosmography
- Herschel-ATLAS: Modelling the first strong gravitational lenses
- Dark matter-baryons separation at the lowest mass scale: the Bullet Group
- Strong lensing modeling in galaxy clusters as a promising method to test cosmography I. Parametric dark energy models
- EasyCritics I: Efficient detection of strongly-lensing galaxy groups and clusters in wide-field surveys
- Galaxy-galaxy lensing in the outskirts of CLASH clusters: constraints on local shear and testing mass-luminosity scaling relation