Galaxy mass profiles from strong lensing I: The circular power-law model
arXiv:1904.08400 · doi:10.1093/mnras/stz1603
Abstract
In this series of papers we develop a formalism for constraining mass profiles in strong gravitational lenses with extended images, using fluxes in addition to positional information. We start in this paper with a circular power-law profile and show that the slope is uniquely determined by only two observables: the flux ratio and the image position ratio of the two images. We derive an analytic expression relating these two observables to the slope, a result which does not depend on the Einstein angle or the structure or brightness of the source. We then find an expression for the uncertainty on the slope that depends only on the position ratio and the total S/N in the images. For example, in a system with position ratio , S/N and we find that is constrained to a precision of . We then test these results against a series of mock observations. We invert the images and fit an 11 parameter model, including ellipticity and position angle for both lens and source and measure the uncertainty on . We find agreement with the theoretical estimate for all mock observations. In future papers we will examine the radial range of the galaxy over which the constraint on the slope applies, and extend the analysis to elliptical lenses.
12 pages, 5 figures. Accepted for publication in MNRAS
References in corpus (9)
- The Sloan Lens ACS Survey. V. The Full ACS Strong-Lens Sample
- The Structure & Dynamics of Massive Early-type Galaxies: On Homology, Isothermality and Isotropy inside one Effective Radius
- Baryon effects on the internal structure of LCDM halos in the EAGLE simulations
- H0LiCOW IV. Lens mass model of HE 0435-1223 and blind measurement of its time-delay distance for cosmology
- H0LiCOW III. Quantifying the effect of mass along the line of sight to the gravitational lens HE 0435-1223 through weighted galaxy counts
- The BOSS Emission-Line Lens Survey. IV. : Smooth Lens Models for the BELLS GALLERY Sample
- Models of the Cosmic Horseshoe Gravitational Lens
- On the Choice of Lens Density Profile in Time Delay Cosmography
- Zooming into the Cosmic Horseshoe: new insights on the lens profile and the source shape