English

Essential physics of early galaxy formation

Astrophysics of Galaxies 2015-06-19 v2

Abstract

We present a theoretical model embedding the essential physics of early galaxy formation (z = 5-12) based on the single premise that any galaxy can form stars with a maximal limiting efficiency that provides enough energy to expel all the remaining gas, quenching further star formation. This simple idea is implemented into a merger-tree based semi-analytical model that utilises two mass and redshift-independent parameters to capture the key physics of supernova feedback in ejecting gas from low-mass halos, and tracks the resulting impact on the subsequent growth of more massive systems via halo mergers and gas accretion. Our model shows that: (i) the smallest halos (halo mass Mh1010MM_h \leq 10^{10} M_\odot) build up their gas mass by accretion from the intergalactic medium; (ii) the bulk of the gas powering star formation in larger halos (Mh1011.5MM_h \geq 10^{11.5} M_\odot) is brought in by merging progenitors; (iii) the faint-end UV luminosity function slope evolves according to α=1.75logz0.52\alpha = -1.75 \log \,z -0.52. In addition, (iv) the stellar mass-to-light ratio is well fit by the functional form logM=0.38MUV0.13z+2.4\log\, M_* = -0.38 M_{UV} -0.13\, z + 2.4, which we use to build the evolving stellar mass function to compare to observations. We end with a census of the cosmic stellar mass density (SMD) across galaxies with UV magnitudes over the range 23MUV11-23 \leq M_{UV} \leq -11 spanning redshifts 5<z<125 < z < 12: (v) while currently detected LBGs contain 50\approx 50% (10%) of the total SMD at z=5z=5 (8), the JWST will detect up to 25% of the SMD at z9.5z \simeq 9.5.

Keywords

Cite

@article{arxiv.1405.4862,
  title  = {Essential physics of early galaxy formation},
  author = {Pratika Dayal and Andrea Ferrara and James Dunlop and Fabio Pacucci},
  journal= {arXiv preprint arXiv:1405.4862},
  year   = {2015}
}

Comments

Accepted to MNRAS with minor changes

R2 v1 2026-06-22T04:18:18.335Z