Published June 10, 2018 | Version Published + Accepted Version
Journal Article Open

The Redshift Evolution of Rest-UV Spectroscopic Properties in Lyman-break Galaxies at z ~ 2–4

  • 1. ROR icon University of California, Los Angeles
  • 2. ROR icon University of California, Riverside
  • 3. ROR icon University of California, Davis
  • 4. ROR icon University of Arizona
  • 5. ROR icon California Institute of Technology
  • 6. ROR icon Carnegie Observatories
  • 7. ROR icon University of Wisconsin–Milwaukee
  • 8. ROR icon University College London
  • 9. ROR icon University of Cambridge

Abstract

We present the first comprehensive evolutionary analysis of the rest-frame UV spectroscopic properties of star-forming galaxies at z ~ 2–4. We match samples at different redshifts in UV luminosity and stellar mass, and perform systematic measurements of spectral features and stellar population modeling. By creating composite spectra grouped according to Lyα equivalent width (EW) and various galaxy properties, we study the evolutionary trends among Lyα, low- and high-ionization interstellar (LIS and HIS) absorption features, and integrated galaxy properties. We also examine the redshift evolution of Lyα and LIS absorption kinematics, and fine-structure emission EWs. The connections among the strengths of Lyα, LIS lines, and dust extinction are redshift independent, as is the decoupling of the Lyα and HIS line strengths, and the bulk outflow kinematics as traced by the LIS lines. Stronger Lyα emission is observed at higher redshift at fixed UV luminosity, stellar mass, SFR, and age. Much of this variation in the average Lyα strength with redshift, and the variation in Lyα strength at fixed redshift, can be explained in terms of variations in the neutral gas covering fraction and/or dust content in the ISM and CGM. However, based on the connection between Lyα and C iii] emission strengths, we additionally find evidence for variations in the intrinsic production rate of Lyα photons at the highest Lyα EWs. The challenge now is to understand the observed evolution of the neutral gas covering fraction and dust extinction within a coherent model for galaxy formation, and make robust predictions for the escape of ionizing radiation at z > 6.

Additional Information

© 2018 The American Astronomical Society. Received 2018 March 15; revised 2018 April 18; accepted 2018 April 19; published 2018 June 13. We acknowledge support from the David & Lucile Packard Foundation (A.E.S). We are grateful to the 3D-HST team for providing ancillary data on galaxy properties. This paper also includes data gathered with the 6.5 m Magellan Telescopes located at Las Campanas Observatory, Chile. We wish to extend special thanks to those of Hawaiian ancestry on whose sacred mountain we are privileged to be guests. Without their generous hospitality, most of the observations presented herein would not have been possible.

Attached Files

Published - Du_2018_ApJ_860_75.pdf

Accepted Version - 1803.05912.pdf

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Additional details

Identifiers

Eprint ID
87053
Resolver ID
CaltechAUTHORS:20180613-094038182

Related works

Funding

David and Lucile Packard Foundation

Dates

Created
2018-06-13
Created from EPrint's datestamp field
Updated
2021-11-15
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Caltech groups
Astronomy Department