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Direct Measurement of Dust Attenuation in z approx. 1.5 Star-Forming Galaxies from 3D-HST: Implications for Dust Geometry and Star Formation RatesThe nature of dust in distant galaxies is not well understood, and until recently few direct dust measurements have been possible. We investigate dust in distant star-forming galaxies using near-infrared grism spectra of the 3D-HST survey combined with archival multi-wavelength photometry. These data allow us to make a direct comparison between dust towards star-forming regions (measured using Balmer decrements) and the integrated dust properties (derived by comparing spectral energy distributions [SEDs] with stellar population and dust models) for a statistically significant sample of distant galaxies. We select a sample of 163 galaxies between 1.36< or = z< or = 1.5 with H(alpha) SNR > or = 5 and measure Balmer decrements from stacked spectra. First, we stack spectra in bins of integrated stellar dust attenuation, and find that there is extra dust extinction towards star-forming regions (AV,HII is 1.81 times the integrated AV, star), though slightly lower than found for low-redshift starburst galaxies. Next, we stack spectra in bins of specific star formation rate (log sSFR), star formation rate (log SFR), and stellar mass (logM∗). We find that on average AV,HII increases with SFR and mass, but decreases with increasing sSFR. The amount of extra extinction also decreases with increasing sSFR and decreasing stellar mass. Our results are consistent with the two-phase dust model - in which galaxies contain both a diffuse and a stellar birth cloud dust component - as the extra extinction will increase once older stars outside the star-forming regions become more dominant. Finally, using our Balmer decrements we derive dust-corrected H(alpha) SFRs, and find evidence that SED fitting produces incorrect SFRs if very rapidly declining SFHs are included in the explored parameter space. Subject headings: dust, extinction- galaxies: evolution- galaxies: high-redshift
Document ID
20140017712
Acquisition Source
Goddard Space Flight Center
Document Type
Preprint (Draft being sent to journal)
Authors
Price, Sedona H.
(California Univ. Berkeley, CA, United States)
Kriek, Mariska
(California Univ. Berkeley, CA, United States)
Brammer, Gabriel B
(Space Telescope Science Inst. Baltimore, MD, United States)
Conroy, Charlie
(California Univ. Santa Cruz, CA, United States)
Schreiber, Natascha M. Foerster
(Max-Planck-Inst. fuer Extraterrestrische Physik Garching, Germany)
Franx, Marijn
(Leiden Univ. Netherlands)
Fumagalli, Mattia
(Leiden Univ. Netherlands)
Lundren, Britt
(Wisconsin Univ. Madison, WI, United States)
Momcheva, Ivelina
(Yale Univ. New Haven, CT, United States)
Nelson, Erica J.
(Yale Univ. New Haven, CT, United States)
Rix, Hans-Walter
(Max-Planck-Inst. fuer Astronomie Heidelberg, Germany)
Skelton, Rosalind E.
(South African Astronomical Observatory Cape Town, South Africa)
VanDokkum, Pieter G.
(Yale Univ. New Haven, CT, United States)
Tease, Katherine Whitaker
(Oak Ridge Associated Universities Greenbelt, MD, United States)
Wuyts, Stijn
(Max-Planck-Inst. fuer Extraterrestrische Physik Garching, Germany)
Date Acquired
December 23, 2014
Publication Date
October 15, 2013
Publication Information
Publisher: The Astrophysical Journal
Subject Category
Astrophysics
Report/Patent Number
GSFC-E-DAA-TN17933
Funding Number(s)
CONTRACT_GRANT: DGE 1106400
CONTRACT_GRANT: 12117.17-A
CONTRACT_GRANT: NNH06CC03B
CONTRACT_GRANT: NAS5-26555
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
Direct
Dust
Measurement
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