PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
October 8, 2025Monthly Notices of the Royal Astronomical Society13 citationsOpen Access

ΛCDM is still not broken: empirical constraints on the star formation efficiency at z ∼12 – 30

View Full Paper
LYL. Y. Aaron YungRSRachel S. SomervilleKIKartheik G. Iyer

Key Points

  • The study finds no fundamental tension with lcdm models, which enhances understanding of early galaxy formation.
  • Empirical constraints show star formation efficiencies range from 20% to 65% for observed galaxy candidates in the early universe.
  • Utilizing N-body simulations allowed for assessments of halo growth rates and star formation rates across various redshifts.
  • The findings imply that theories of galaxy formation at high redshift may need revisions, especially regarding star formation mechanics.

Abstract

Abstract The James Webb Space Telescope continues to push back the redshift frontier to ever earlier cosmic epochs, with recent announcements of galaxy candidates at redshifts of 15 ≲ z ≲ 30. We leverage the recent gureft suite of dissipationless N-body simulations, which were designed for interpreting observations in the high redshift Universe, and provide predictions of dark matter halo mass functions and halo growth rates for a state-of-the-art cosmology over a wide range of halo masses from 6 z 30. We combine these results with an empirical framework that maps halo growth rate to galaxy star formation rate and then to rest-frame UV luminosity. We find that even if all of the photometrically selected 15 ≲ z ≲ 30 galaxy candidates are real and actually at these extreme redshifts, there is no fundamental tension with ΛCDM, nor are exotic explanations required. With stellar light-to-mass ratios similar to those in well-studied lower redshift galaxies, our simple model can account for the observed extreme ultra-high redshift populations with star formation efficiencies that peak at values of 20-65percnt. Bursty star formation, or higher light-to-mass ratios such as are expected for lower metallicity stellar populations or a top-heavy Initial Mass Function, would result in even lower required star formation efficiencies, comparable to values predicted by high resolution numerical simulations of high-surface density star forming clouds.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Yung et al. (2025) studied this question.

synapsesocial.com/papers/68e5c1c36950a706b22b5b2ehttps://doi.org/10.1093/mnras/staf1699
Ask AI
Helpful
Bookmark
Share
View Full Paper