English

TDCOSMO VI: Distance Measurements in Time-delay Cosmography under the Mass-sheet transformation

Cosmology and Nongalactic Astrophysics 2021-08-04 v1 Astrophysics of Galaxies

Abstract

Time-delay cosmography with gravitationally lensed quasars plays an important role in anchoring the absolute distance scale and hence measuring the Hubble constant, H0H_{0}, independent of traditional distance ladder methodology. A current potential limitation of time delay distance measurements is the "mass-sheet transformation" (MST) which leaves the lensed imaging unchanged but changes the distance measurements and the derived value of H0H_0. In this work we show that the standard method of addressing the MST in time delay cosmography, through a combination of high-resolution imaging and the measurement of the stellar velocity dispersion of the lensing galaxy, depends on the assumption that the ratio, Ds/DdsD_{\rm s}/D_{\rm ds}, of angular diameter distances to the background quasar and between the lensing galaxy and the quasar can be constrained. This is typically achieved through the assumption of a particular cosmological model. Previous work (TDCOSMO IV) addressed the mass-sheet degeneracy and derived H0H_{0} under the assumption of Λ\LambdaCDM model. In this paper we show that the mass sheet degeneracy can be broken without relying on a specific cosmological model by combining lensing with relative distance indicators such as supernovae type Ia and baryon acoustic oscillations, which constrain the shape of the expansion history and hence Ds/DdsD_{\rm s}/D_{\rm ds}. With this approach, we demonstrate that the mass-sheet degeneracy can be constrained in a cosmological-model-independent way, and hence model-independent distance measurements in time-delay cosmography under mass-sheet transformations can be obtained.

Keywords

Cite

@article{arxiv.2011.06002,
  title  = {TDCOSMO VI: Distance Measurements in Time-delay Cosmography under the Mass-sheet transformation},
  author = {Geoff C. -F. Chen and Christopher D. Fassnacht and Sherry H. Suyu and Akın Yıldırım and Eiichiro Komatsu and Jose Luis Bernal},
  journal= {arXiv preprint arXiv:2011.06002},
  year   = {2021}
}

Comments

11 pages, 8 figures