The Hubble tension, the growing discrepancy between early- and late-Universe determinations of $H_0$, has renewed interest in late-time, model-independent probes of the cosmic expansion history. Cosmic chronometers (CCs), passively evolving early-type galaxies whose differential ageing directly traces the cosmic expansion rate, $H(z)\propto \text{d}z/\text{d}t$, offer one such probe, entirely decoupled from the distance ladder and from early-Universe physics. This thesis develops and applies a Lick-index-based CC pipeline, combining high signal-to-noise spectral stacking, stellar-population synthesis fitting, and a cosmographic (Taylor-expansion) reading of the resulting age-redshift relations, to two large spectroscopic samples: $90\,396$ SDSS Legacy galaxies at $0.05\lesssim z\lesssim0.35$ and $527\,287$ DESI-DR1 luminous red galaxies at $0.36\lesssim z\lesssim0.80$. Applied to the SDSS sample, a classic, $z_0=0$ cosmographic fit of TMJ-modelled stellar ages yields $H_0=70.0^{+4.1}_{-7.6}\ \mathrm{km\,s^{-1}\,Mpc^{-1}}$, comfortably compatible with both sides of the Hubble tension, together with a $w_0\mathrm{CDM}$ extension fully consistent with a cosmological constant. Applied to the substantially larger and higher-redshift DESI sample, a pivotal-redshift cosmography anchored at $z_0\approx0.57$ delivers a fully covariant $H(z)$ reconstruction across $0.36\lesssim z\lesssim0.80$, together with two independent, differential $H(z)$ measurements at $z\approx0.55$ and $z\approx0.61$; every one of these results is individually consistent with the $\Lambda$CDM prediction of Planck Collaboration et al. (2020), taken today as the typical benchmark cosmology to compare with. As a by-product of the same stacks, age-metallicity-$\alpha$-enhancement scaling relations are derived at $z\approx0$ from SDSS and, indirectly, at $z\approx0.57$ from DESI, both consistent with the downsizing scenario for the assembly of early-type galaxies. Taken together, these results establish Lick-index cosmic chronometers, built on carefully stacked spectra and interpreted through a cosmographic rather than a purely finite-difference framework, as a competitive, genuinely model-independent probe of the low- and intermediate-redshift expansion history of the Universe. The thesis closes by identifying the main systematic limitations of the current pipeline, including an unexplained oscillatory pattern in the index-redshift relations, and by outlining concrete directions for future work on both the astrophysical and the cosmographic sides of the method.

Towards Precision Cosmography with Cosmic Chronometers

ALONSO ÁLVAREZ, CARLOS
2026

Abstract

The Hubble tension, the growing discrepancy between early- and late-Universe determinations of $H_0$, has renewed interest in late-time, model-independent probes of the cosmic expansion history. Cosmic chronometers (CCs), passively evolving early-type galaxies whose differential ageing directly traces the cosmic expansion rate, $H(z)\propto \text{d}z/\text{d}t$, offer one such probe, entirely decoupled from the distance ladder and from early-Universe physics. This thesis develops and applies a Lick-index-based CC pipeline, combining high signal-to-noise spectral stacking, stellar-population synthesis fitting, and a cosmographic (Taylor-expansion) reading of the resulting age-redshift relations, to two large spectroscopic samples: $90\,396$ SDSS Legacy galaxies at $0.05\lesssim z\lesssim0.35$ and $527\,287$ DESI-DR1 luminous red galaxies at $0.36\lesssim z\lesssim0.80$. Applied to the SDSS sample, a classic, $z_0=0$ cosmographic fit of TMJ-modelled stellar ages yields $H_0=70.0^{+4.1}_{-7.6}\ \mathrm{km\,s^{-1}\,Mpc^{-1}}$, comfortably compatible with both sides of the Hubble tension, together with a $w_0\mathrm{CDM}$ extension fully consistent with a cosmological constant. Applied to the substantially larger and higher-redshift DESI sample, a pivotal-redshift cosmography anchored at $z_0\approx0.57$ delivers a fully covariant $H(z)$ reconstruction across $0.36\lesssim z\lesssim0.80$, together with two independent, differential $H(z)$ measurements at $z\approx0.55$ and $z\approx0.61$; every one of these results is individually consistent with the $\Lambda$CDM prediction of Planck Collaboration et al. (2020), taken today as the typical benchmark cosmology to compare with. As a by-product of the same stacks, age-metallicity-$\alpha$-enhancement scaling relations are derived at $z\approx0$ from SDSS and, indirectly, at $z\approx0.57$ from DESI, both consistent with the downsizing scenario for the assembly of early-type galaxies. Taken together, these results establish Lick-index cosmic chronometers, built on carefully stacked spectra and interpreted through a cosmographic rather than a purely finite-difference framework, as a competitive, genuinely model-independent probe of the low- and intermediate-redshift expansion history of the Universe. The thesis closes by identifying the main systematic limitations of the current pipeline, including an unexplained oscillatory pattern in the index-redshift relations, and by outlining concrete directions for future work on both the astrophysical and the cosmographic sides of the method.
22-set-2026
Inglese
Monaco, Pierluigi; Maraston, Claudia; Moresco, Michele
Lapi, Andrea
Baccigalupi, Carlo
Muniz Cueli, Marcos
BIVIANO, Andrea
SISSA
Trieste
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14242/379686
Il codice NBN di questa tesi è URN:NBN:IT:SISSA-379686