Is the IMF in ellipticals bottom-heavy? Clues from their chemical abundances
arXiv:1805.06841 · doi:10.1093/mnras/sty3127
Abstract
We tested the implementation of different IMFs in our model for the chemical evolution of ellipticals, with the aim of reproducing the observed relations of [Fe/H] and [Mg/Fe] abundances with galaxy mass in a sample of early-type galaxies selected from the SPIDER-SDSS catalog. Abundances in the catalog were derived from averaged spectra, obtained by stacking individual spectra according to central velocity dispersion, as a proxy of galaxy mass. We tested initial mass functions already used in a previous work, as well as two new models, based on low-mass tapered ("bimodal") IMFs, where the IMF becomes either (1) bottom-heavy in more massive galaxies, or (2) is time-dependent, switching from top-heavy to bottom-heavy in the course of galactic evolution. We found that observations could only be reproduced by models assuming either a constant, Salpeter IMF, or a time-dependent distribution, as other IMFs failed. We further tested the models by calculating their M/L ratios. We conclude that a constant, time-independent bottom-heavy IMF does not reproduce the data, especially the increase of the ratio with galactic stellar mass, whereas a variable IMF, switching from top to bottom-heavy, can match observations. For the latter models, the IMF switch always occurs at the earliest possible considered time, i.e. Gyr.
24 pages, 25 figures, accepted for publication on MNRAS
References in corpus (15)
- Galaxy Groups in the SDSS DR4: I. The Catalogue and Basic Properties
- A systematic variation of the stellar initial mass function in early-type galaxies
- UV-extended E-MILES stellar population models: young components in massive early-type galaxies
- Evolutionary stellar population synthesis with MILES - II. Scaled-solar and α-enhanced models
- Variations of the stellar initial mass function in the progenitors of massive early-type galaxies and in extreme starburst environments
- The SINFONI Nearby Elliptical Lens Locator Survey: Discovery of two new low-redshift strong lenses and implications for the initial mass function in giant early-type galaxies
- Further evidence for a time-dependent initial mass function in massive early-type galaxies
- Chemical evolution of classical and ultra-faint dwarf spheroidal galaxies
- Are dry mergers of Ellipticals the way to reconcile model predictions with the downsizing?
- The IGIMF and other IMFs in dSphs: the case of Sagittarius
- The effects of the IMF on the chemical evolution of elliptical galaxies
- The Influence of Galaxy Environment on the Stellar Initial Mass Function of Early-Type Galaxies
- On the shape and evolution of a cosmic ray regulated galaxy-wide stellar initial mass function
- The metal enrichment of passive galaxies in cosmological simulations of galaxy formation
- Variations of the stellar initial mass function in semi-analytical models II: the impact of Cosmic Ray regulation
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- The ALPINE-ALMA [CII] survey: Dust mass budget in the early Universe
- Constraining the origin and models of chemical enrichment in galaxy clusters using the Athena X-IFU
- Deriving the star formation histories of galaxies from spectra with simulation-based inference
- The Fundamental Plane of cluster spheroidal galaxies at z. Evidence for mass-dependent evolution
- Recovery of the low- and high-mass end slopes of the IMF in massive early-type galaxies using detailed elemental abundances
- On the Origin of Dust in Galaxy Clusters at Low to Intermediate Redshift
- Virial models and Anisotropy of Velocity Dispersion in e-galaxies
- Downsizing revised: Star formation timescales for elliptical galaxies with an environment-dependent IMF and number of SNIa
- Fornax 3D project: assessing the diversity of IMF and stellar population maps within the Fornax Cluster