How the cosmic web induces intrinsic alignments of galaxies
arXiv:1409.2838 · doi:10.1017/S1743921316010322
Abstract
Intrinsic alignments are believed to be a major source of systematics for future generation of weak gravitational lensing surveys like Euclid or LSST. Direct measurements of the alignment of the projected light distribution of galaxies in wide field imaging data seem to agree on a contamination at a level of a few per cent of the shear correlation functions, although the amplitude of the effect depends on the population of galaxies considered. Given this dependency, it is difficult to use dark matter-only simulations as the sole resource to predict and control intrinsic alignments. We report here estimates on the level of intrinsic alignment in the cosmological hydrodynamical simulation Horizon-AGN that could be a major source of systematic errors in weak gravitational lensing measurements. In particular, assuming that the spin of galaxies is a good proxy for their ellipticity, we show how those spins are spatially correlated and how they couple to the tidal field in which they are embedded. We also present theoretical calculations that illustrate and qualitatively explain the observed signals.
6 pages, contribution to the proceedings of IAU Symposium 308 "The Zeldovich Universe: Genesis and Growth of the Cosmic Web"
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Cited by in corpus (4)
- Galaxy-halo alignments in the Horizon-AGN cosmological hydrodynamical simulation
- Cosmic Web Reconstruction through Density Ridges: Method and Algorithm
- Redshift and luminosity evolution of the intrinsic alignments of galaxies in Horizon-AGN
- Minkowski Tensors in Two Dimensions - Probing the Morphology and Isotropy of the Matter and Galaxy Density Fields