Time to Sparkler. Accurate ages of lensed globular clusters at $z=1.4$ with JWST photometry

Fuente: arXiv
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Autori principali: Tomasetti, Elena, Moresco, Michele, Lardo, Carmela, Courbin, Frédéric, Jimenez, Raul, Verde, Licia, Millon, Martin, Cimatti, Andrea
Natura: Preprint
Pubblicazione: 2024
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author Tomasetti, Elena
Moresco, Michele
Lardo, Carmela
Courbin, Frédéric
Jimenez, Raul
Verde, Licia
Millon, Martin
Cimatti, Andrea
author_facet Tomasetti, Elena
Moresco, Michele
Lardo, Carmela
Courbin, Frédéric
Jimenez, Raul
Verde, Licia
Millon, Martin
Cimatti, Andrea
contents Determining reliable ages for old stellar objects at different redshifts offers a powerful means to constrain cosmology without relying on a specific cosmological model: this is known as the cosmic clocks method. Globular clusters (GCs), long recognised as hosts of the Universe's oldest stars, have served as the archetypical cosmic clocks. However, their age estimates have traditionally been confined to redshift z=0, limiting their role to constraining the present-day age of the Universe. Here we explore how to measure reliable ages of GCs well beyond $z=0$, leveraging their potential to extend cosmic clock measurements to earlier epochs. Specifically, we use 6-band JWST/NIRCam high-precision photometry of candidate stellar clusters in the Sparkler galaxy, located at redshift $z$=1.378 and strongly lensed by the galaxy cluster SMACS J0723.3-7327. By employing stellar population models within a Bayesian inference framework, we constrain the GCs' ages, star formation histories, metallicities, and dust attenuation. The five compact sources previously identified as GCs, based on their red spectral energy distributions being consistent with the colours of old stellar systems, yield a formation age of $1.9\pm0.4$ Gyr on average. This result implies a total age of the Universe that aligns well with the $Λ$CDM model derived from Planck18 data. Recent space-based observations have uncovered a wealth of lensed GCs as well as globulars within the member galaxies of the clusters themselves. These findings suggest that the pool of objects available for cosmic clock studies is enormous. A systematic multi-band photometric survey of GCs in and behind galaxy clusters, using facilities like Euclid and JWST, would therefore be a powerful tool for estimating cluster ages across a large range of redshifts, allowing the Universe to be dated across an unprecedented range of epochs.
format Preprint
id arxiv_https___arxiv_org_abs_2412_06903
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Time to Sparkler. Accurate ages of lensed globular clusters at $z=1.4$ with JWST photometry
Tomasetti, Elena
Moresco, Michele
Lardo, Carmela
Courbin, Frédéric
Jimenez, Raul
Verde, Licia
Millon, Martin
Cimatti, Andrea
Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
Determining reliable ages for old stellar objects at different redshifts offers a powerful means to constrain cosmology without relying on a specific cosmological model: this is known as the cosmic clocks method. Globular clusters (GCs), long recognised as hosts of the Universe's oldest stars, have served as the archetypical cosmic clocks. However, their age estimates have traditionally been confined to redshift z=0, limiting their role to constraining the present-day age of the Universe. Here we explore how to measure reliable ages of GCs well beyond $z=0$, leveraging their potential to extend cosmic clock measurements to earlier epochs. Specifically, we use 6-band JWST/NIRCam high-precision photometry of candidate stellar clusters in the Sparkler galaxy, located at redshift $z$=1.378 and strongly lensed by the galaxy cluster SMACS J0723.3-7327. By employing stellar population models within a Bayesian inference framework, we constrain the GCs' ages, star formation histories, metallicities, and dust attenuation. The five compact sources previously identified as GCs, based on their red spectral energy distributions being consistent with the colours of old stellar systems, yield a formation age of $1.9\pm0.4$ Gyr on average. This result implies a total age of the Universe that aligns well with the $Λ$CDM model derived from Planck18 data. Recent space-based observations have uncovered a wealth of lensed GCs as well as globulars within the member galaxies of the clusters themselves. These findings suggest that the pool of objects available for cosmic clock studies is enormous. A systematic multi-band photometric survey of GCs in and behind galaxy clusters, using facilities like Euclid and JWST, would therefore be a powerful tool for estimating cluster ages across a large range of redshifts, allowing the Universe to be dated across an unprecedented range of epochs.
title Time to Sparkler. Accurate ages of lensed globular clusters at $z=1.4$ with JWST photometry
topic Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
url https://arxiv.org/abs/2412.06903