2019ApJ...882...94W


Query : 2019ApJ...882...94W

2019ApJ...882...94W - Astrophys. J., 882, 94-94 (2019/September-2)

Discovery of strongly inverted metallicity gradients in dwarf galaxies at z ∼ 2.

WANG X., JONES T.A., TREU T., HIRTENSTEIN J., BRAMMER G.B., DADDI E., MENG X.-L., MORISHITA T., ABRAMSON L.E., HENRY A.L., PENG Y.-J., SCHMIDT K.B., SHARON K., TRENTI M. and VULCANI B.

Abstract (from CDS):

We report the first measurements with sub-kiloparsec spatial resolution of strongly inverted gas-phase metallicity gradients in two dwarf galaxies at z ∼ 2. The galaxies have stellar masses ∼109 M, specific star formation rate ∼20 Gyr–1, and global metallicity 12+log(O/H)∼8.1 (1/4 solar), assuming the strong-line calibrations of [O III]/Hβ and [O II]/Hβ from Maiolino et al. Their radial metallicity gradients are measured to be highly inverted, i.e., 0.122 ± 0.008 and 0.111 ± 0.017 dex kpc–1, which is hitherto unseen at such small masses in similar redshift ranges. From the Hubble Space Telescope observations of the source nebular emission and stellar continuum, we present two-dimensional spatial maps of star formation rate surface density, stellar population age, and gas fraction, which show that our galaxies are currently undergoing rapid mass assembly via disk inside-out growth. More importantly, using a simple chemical evolution model, we find that the gas fractions for different metallicity regions cannot be explained by pure gas accretion. Our spatially resolved analysis based on a more advanced gas regulator model results in a spatial map of net gaseous outflows, triggered by active central starbursts, that potentially play a significant role in shaping the spatial distribution of metallicity by effectively transporting stellar nucleosynthesis yields outwards. The relation between wind mass loading factors and stellar surface densities measured in different regions of our galaxies shows that a single type of wind mechanism, driven by either energy or momentum conservation, cannot explain the entire galaxy. These sources present a unique constraint on the effects of gas flows on the early phase of disk growth from the perspective of spatially resolved chemical evolution within individual systems.

Abstract Copyright: © 2019. The American Astronomical Society. All rights reserved.

Journal keyword(s): galaxies: abundances - galaxies: evolution - galaxies: formation - galaxies: high-redshift - gravitational lensing: strong

Simbad objects: 7

goto Full paper

goto View the references in ADS

Number of rows : 7
N Identifier Otype ICRS (J2000)
RA
ICRS (J2000)
DEC
Mag U Mag B Mag V Mag R Mag I Sp type #ref
1850 - 2024
#notes
1 ACO 370 ClG 02 39 50.5 -01 35 08           ~ 752 0
2 [LRB2019] 4139 LeG 02 39 54.56 -01 35 29.8   22.948     22.412 ~ 4 0
3 [TSB2015] GLASS MACS0744-01203 LeG 07 44 47.420 +39 27 24.10           ~ 3 0
4 ClG J0744+3927 ClG 07 44 52.5 +39 27 30           ~ 181 0
5 MCS J1149.5+2223 ClG 11 49 35.8 +22 23 55           ~ 464 0
6 XLS 30 EmG 23 46 18.570 +12 47 47.38           ~ 35 0
7 NAME Local Group GrG ~ ~           ~ 8443 0

To bookmark this query, right click on this link: simbad:objects in 2019ApJ...882...94W and select 'bookmark this link' or equivalent in the popup menu