paper

Implications of a spatially resolved main sequence for the size evolution of star forming galaxies

arXiv:2110.00004 · doi:10.1093/mnras/stab2859

Abstract

Two currently debated problems in galaxy evolution, the fundamentally local or global nature of the main sequence of star formation and the evolution of the mass-size relation of star forming galaxies (SFGs), are shown to be intimately related to each other. As a preliminary step, a growth function is defined, which quantifies the differential change in half-mass radius per unit increase in stellar mass () due to star formation. A general derivation shows that , meaning that is proportional to the relative difference in specific star formation rate between the outer and inner half of a galaxy, with a dimensionless structural factor for which handy expressions are provided. As an application, it is shown that galaxies obeying a fundamentally local main sequence also obey, to a good approximation, , where is the slope of the normalized local main sequence () and the Sersic index. An exact expression is also provided. Quantitatively, a fundamentally local main sequence is consistent with SFGs growing along a stationary mass-size relation, but inconsistent with the continuation at of evolutionary laws derived at higher . This demonstrates that either the main sequence is not fundamentally local, or the mass-size relation of SFGs has converged to an equilibrium state some finite time in the past, or both.

Accepted for publication in MNRAS

References in corpus (34)

Implications of a spatially resolved main sequence for the size evolution of star forming galaxies · wovepaper