Open Access
The stellar populations of spiral galaxies
Author(s) -
Bell Eric F.,
De Jong Roelof S.
Publication year - 2000
Publication title -
monthly notices of the royal astronomical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.058
H-Index - 383
eISSN - 1365-2966
pISSN - 0035-8711
DOI - 10.1046/j.1365-8711.2000.03138.x
Subject(s) - physics , astrophysics , lenticular galaxy , astronomy , spiral galaxy , interacting galaxy , star formation , elliptical galaxy , galaxy , stellar mass , galaxy formation and evolution , galaxy merger , barred spiral galaxy , surface brightness fluctuation , stellar population , initial mass function
We have used a large sample of low‐inclination spiral galaxies with radially resolved optical and near‐infrared photometry to investigate trends in star formation history with radius as a function of galaxy structural parameters. A maximum‐likelihood method was used to match all the available photometry of our sample to the colours predicted by stellar population synthesis models. The use of simplistic star formation histories, uncertainties in the stellar population models and considering the importance of dust all compromise the absolute ages and metallicities derived in this work; however, our conclusions are robust in a relative sense. We find that most spiral galaxies have stellar population gradients, in the sense that their inner regions are older and more metal rich than their outer regions. Our main conclusion is that the surface density of a galaxy drives its star formation history, perhaps through a local density dependence in the star formation law. The mass of a galaxy is a less important parameter; the age of a galaxy is relatively unaffected by its mass; however, the metallicity of galaxies depends on both surface density and mass. This suggests that galaxy‐mass‐dependent feedback is an important process in the chemical evolution of galaxies. In addition, there is significant cosmic scatter suggesting that mass and density may not be the only parameters affecting the star formation history of a galaxy.