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February 5, 20260 citations

MIDIS: Unveiling the star formation history in massive galaxies at 1  <  

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MAM. AnnunziatellaPPP. G. P’erez-Gonz’alezJÁJ. Álvarez-Márquez

Key Points

  • This research aims to uncover the star formation histories of massive galaxies in the redshift range of 1 to 4.5.
  • Analyzed spectro-photometric data combining HST and JWST observations
  • Utilized low-resolution grism spectroscopy from JWST/NIRISS
  • Derived star formation histories using BAGPIPES and synthesizer codes
  • Evaluated the impact of modeling choices on SFHs
  • NIRISS spectroscopy improves constraints on mass-weighted stellar age and formation redshift
  • Massive galaxies formed half their mass between redshifts 3 and 9
  • Early formation redshifts are linked to high star formation efficiencies
  • Quiescent galaxies are older and assembled mass more rapidly than star-forming ones
  • The findings support the downsizing scenario in galaxy evolution.

Abstract

Context. This paper investigates the star formation histories (SFHs) of a sample of massive galaxies (M⋆ ≥ 1010 M⊙) in the redshift range 1 BAGPIPES and synthesizer, under various SFH assumptions. This approach enables a comprehensive assessment of the biases introduced by different modeling choices. Results. The inclusion of NIRISS spectroscopy, even with its low resolution, significantly improves constraints on key physical parameters, such as the mass-weighted stellar age (tM) and formation redshift (zform), by narrowing their posterior distributions. The massive galaxies in our sample exhibit rapid stellar mass assembly, forming 50% of their mass between 3 ≤ z ≤ 9. The highest inferred formation redshifts are compatible with elevated star formation efficiencies (ϵ) at early epochs. Nonparametric SFHs generally imply an earlier and slower mass assembly compared to parametric forms, highlighting the sensitivity of inferred formation timescales to the chosen SFH model–particularly for galaxies at z < 2. We find that quiescent galaxies are, on average, older (tM ∼ 1.1 Gyr) and assembled more rapidly at earlier times than their star-forming counterparts. These findings support the “downsizing” scenario, in which more massive and passive systems form earlier and more efficiently.

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Cite This Study

Annunziatella et al. (2025) studied this question.

synapsesocial.com/papers/6984346ff1d9ada3c1fb2899https://doi.org/10.1051/0004-6361/202453298/pdf
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