Intrinsic alignments in IllustrisTNG and their implications for weak lensing: Tidal shearing and tidal torquing mechanisms put to the test

Jolanta Zjupa (Corresponding author), Björn Malte Schäfer, Oliver Hahn

Publications: Contribution to journalArticlePeer Reviewed

Abstract

Accurate measurements of the cosmic shear signal require a separation of the true weak gravitational lensing signal from intrinsic shape correlations of galaxies. These 'intrinsic alignments' of galaxies originate from galaxy formation processes and are expected to be correlated with the gravitational field through tidal processes affecting the galaxies, such as tidal shearing for elliptical galaxies and tidal torquing for spiral galaxies. In this study, we use morphologically selected samples of elliptical and spiral galaxies from the ILLUSTRISTNG simulation at z = 0 and z = 1 to test the commonly employed linear (tidal shearing) and quadratic (tidal torquing) models for intrinsic alignments. We obtain local measurements of the linear and quadratic alignment parameters, including corrections for large-scale anisotropies of the cosmologically small simulation volume, and study their dependence on galaxy and environmental properties. We find a significant alignment signal for elliptical galaxies (linear model), that increases with mass and redshift. Spiral galaxies (quadratic model), on the other hand, exhibit a significant signal only for the most massive objects at z = 1. We show the quadratic model for spiral galaxies to break down at its fundamental assumptions, and simultaneously obtain a significant signal of spiral galaxies to align according to the linear model. We use the derived alignment parameters to compute intrinsic alignment spectra and estimate the expected contamination in the weak lensing signal obtained by Euclid.
Original languageEnglish
Pages (from-to)2049-2072
Number of pages24
JournalMonthly Notices of the Royal Astronomical Society
Volume514
Issue number2
Early online date22 Feb 2022
DOIs
Publication statusPublished - Aug 2022

Austrian Fields of Science 2012

  • 103004 Astrophysics
  • 103044 Cosmology

Keywords

  • methods: numerical
  • galaxies: formation
  • cosmology: theory
  • ANGULAR-MOMENTUM
  • SPIN
  • GALAXY SHAPES
  • STAR-FORMATION
  • EVOLUTION
  • SELF-CALIBRATION
  • DARK-MATTER
  • SIMULATIONS
  • STELLAR MASS
  • COSMIC SHEAR
  • Methods: Numerical
  • Cosmology: Theory
  • Galaxies: Formation

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