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Cosmic dynamics in the era of Extremely Large Telescopes

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posted on 2024-08-06, 10:15 authored by J. Liske, Andrea Grazian, E. Vanzella, M. Dessauges, M. Viel, L. Pasquini, Martin G. Haehnelt, Stefano Cristiani, Francesco Pepe, G. Avila, P. Bonifacio, François Bouchy, H. Dekker, B. Delabre, S. D'Odorico, V. D'Odorico, Sergei A. Levshakov, C. Lovis, M. Mayor, Paolo Molaro, L. Moscardini, Michael MurphyMichael Murphy, D. Queloz, P. Shaver, S. Udry, T. Wiklind, S. Zucker
The redshifts of all cosmologically distant sources are expected to experience a small, systematic drift as a function of time due to the evolution of the Universe's expansion rate. A measurement of this effect would represent a direct and entirely model-independent determination of the expansion history of the Universe over a redshift range that is inaccessible to other methods. Here we investigate the impact of the next generation of Extremely Large Telescopes on the feasibility of detecting and characterizing the cosmological redshift drift. We consider the Lyα forest in the redshift range 2 < z < 5 and other absorption lines in the spectra of high-redshift QSOs as the most suitable targets for a redshift drift experiment. Assuming photon-noise-limited observations and using extensive Monte Carlo simulations we determine the accuracy to which the redshift drift can be measured from the Lyα forest as a function of signal-to-noise ratio and redshift. Based on this relation and using the brightness and redshift distributions of known QSOs we find that a 42-m telescope is capable of unambiguously detecting the redshift drift over a period of ∼20 yr using 4000 h of observing time. Such an experiment would provide independent evidence for the existence of dark energy without assuming spatial flatness, using any other cosmological constraints or making any other astrophysical assumption.

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PDF (Accepted manuscript)

ISSN

0035-8711

Journal title

Monthly Notices of the Royal Astronomical Society

Volume

386

Issue

3

Pagination

26 pp

Publisher

Wiley

Copyright statement

Copyright © 2008 Royal Astronomical Society. The accepted manuscript is reproduced in accordance with the copyright policy of the publisher. The definitive publication is available at www.interscience.wiley.com.

Language

eng

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