paper

Testing the Universality of the Stellar IMF with Chandra and HST

arXiv:1612.05189 · doi:10.3847/1538-4357/835/2/183

Abstract

The stellar initial mass function (IMF), which is often assumed to be universal across unresolved stellar populations, has recently been suggested to be "bottom-heavy" for massive ellipticals. In these galaxies, the prevalence of gravity-sensitive absorption lines (e.g. Na I and Ca II) in their near-IR spectra implies an excess of low-mass ( ) stars over that expected from a canonical IMF observed in low-mass ellipticals. A direct extrapolation of such a bottom-heavy IMF to high stellar masses ( ) would lead to a corresponding deficit of neutron stars and black holes, and therefore of low-mass X-ray binaries (LMXBs), per unit near-IR luminosity in these galaxies. Peacock et al. (2014) searched for evidence of this trend and found that the observed number of LMXBs per unit -band luminosity () was nearly constant. We extend this work using new and archival Chandra X-ray Observatory (Chandra) and Hubble Space Telescope (HST) observations of seven low-mass ellipticals where is expected to be the largest and compare these data with a variety of IMF models to test which are consistent with the observed . We reproduce the result of Peacock et al. (2014), strengthening the constraint that the slope of the IMF at must be consistent with a Kroupa-like IMF. We construct an IMF model that is a linear combination of a Milky Way-like IMF and a broken power-law IMF, with a steep slope ( ) for stars < 0.5 (as suggested by near-IR indices), and that flattens out ( ) for stars > 0.5 , and discuss its wider ramifications and limitations.

Accepted for publication in ApJ; 7 pages, 2 figures, 1 table

References in corpus (7)

Cited by in corpus (4)

Testing the Universality of the Stellar IMF with Chandra and HST · wovepaper