Mass-Galaxy offsets in Abell 3827, 2218 and 1689: intrinsic properties or line-of-sight substructures?
arXiv:1402.4217 · doi:10.1093/mnras/stu124
Abstract
We have made mass maps of three strong-lensing clusters, Abell 3827, Abell 2218 and Abell 1689, in order to test for mass-light offsets. The technique used is GRALE, which enables lens reconstruction with minimal assumptions, and specifically with no information about the cluster light being given. In the first two of these clusters, we find local mass peaks in the central regions that are displaced from the nearby galaxies by a few to several kpc. These offsets {\em could\/} be due to line of sight structure unrelated to the clusters, but that is very unlikely, given the typical levels of chance line-of-sight coincidences in simulations --- for Abell 3827 and Abell 2218 the offsets appear to be intrinsic. In the case of Abell 1689, we see no significant offsets in the central region, but we do detect a possible line of sight structure: it appears only when sources at $z\ga 3$ are used for reconstructing the mass. We discuss possible origins of the mass-galaxy offsets in Abell 3827 and Abell 2218: these include pure gravitational effects like dynamical friction, but also non-standard mechanisms like self-interacting dark-matter.
14 pages, 9 figures; Accepted for publication in MNRAS
References in corpus (12)
- A direct empirical proof of the existence of dark matter
- Constraints on the Self-Interaction Cross-Section of Dark Matter from Numerical Simulations of the Merging Galaxy Cluster 1E 0657-5
- LensPerfect: Gravitational Lens Massmap Reconstructions Yielding Exact Reproduction of All Multiple Images
- Non-parametric inversion of gravitational lensing systems with few images using a multi-objective genetic algorithm
- Full Lensing Analysis of Abell 1703: Comparison of Independent Lens-Modelling Techniques
- On the cross-section of Dark Matter using substructure infall into galaxy clusters
- Non-parametric strong lens inversion of Cl~0024+1654: illustrating the monopole degeneracy
- Strong Gravitational Lensing by the Super-massive cD Galaxy in Abell 3827
- Two strong-lensing clusters confront universal dark-matter profiles
- Lensview: Software for modelling resolved gravitational lens images
- Ultra deep AKARI observations of Abell 2218: resolving the 15 um extragalactic background light
- Reconstruction of Cluster Masses using Particle Based Lensing I: Application to Weak Lensing
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