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Far-infrared Herschel SPIRE spectroscopy of lensed starbursts reveals physical conditions of ionized gas

Authors :
David A. Naylor
Stephen Anthony Eales
R. Hopwood
Alain Omont
Daizhong Liu
Rob Ivison
C. Yang
Ivan Oteo
Ian Smail
Dominik Riechers
Zhi-Yu Zhang
Rodrigo Herrera-Camus
Steve Maddox
Loretta Dunne
R. D. George
A. J. R. Lewis
Paul van der Werf
Yinghe Zhao
Source :
Monthly Notices of the Royal Astronomical Society, Monthly Notices of the Royal Astronomical Society, 481(1), 59-97, Monthly notices of the Royal Astronomical Society, 2018, Vol.481(1), pp.59-97 [Peer Reviewed Journal], Zhang, Z Y, Ivison, R J, George, R D, Zhao, Y, Dunne, L, Herrera-Camus, R, Lewi, A J R, Liu, D, Naylor, D, Oteo, I, Riechers, D A, Smail, I, Yang, C, Eales, S, Hopwood, R, Maddox, S, Omont, A & van der Werf, P 2018, ' Far-infrared Herschel SPIRE spectroscopy of lensed starbursts reveals physical conditions of ionized gas ', Monthly Notices of the Royal Astronomical Society, vol. 481, no. 1, pp. 59-97 . https://doi.org/10.1093/mnras/sty2082
Publication Year :
2018
Publisher :
Oxford University Press (OUP), 2018.

Abstract

The most intensively star-forming galaxies are extremely luminous at far-infrared (FIR) wavelengths, highly obscured at optical and ultraviolet wavelengths, and lie at $z\ge 1-3$. We present a programme of ${\it Herschel}$ FIR spectroscopic observations with the SPIRE FTS and photometric observations with PACS, both on board ${\it Herschel}$, towards a sample of 45 gravitationally lensed, dusty starbursts across $z\sim 1-3.6$. In total, we detected 27 individual lines down to 3-$\sigma$, including nine $[\rm C{\small II}]$ 158-$\mu$m lines with confirmed spectroscopic redshifts, five possible $[\rm C{\small II}]$ lines consistent with their far-infrared photometric redshifts, and in some individual sources a few $[\rm O{\small III}]$ 88-$\mu$m, $[\rm O{\small III}]$ 52-$\mu$m, $[\rm O{\small I}]$ 145-$\mu$m, $[\rm O{\small I}]$ 63-$\mu$m, $[\rm N{\small II}]$ 122-$\mu$m, and OH 119-$\mu$m (in absorption) lines. To derive the typical physical properties of the gas in the sample, we stack all spectra weighted by their intrinsic luminosity and by their 500-$\mu$m flux densities, with the spectra scaled to a common redshift. In the stacked spectra, we detect emission lines of $[\rm C{\small II}]$ 158-$\mu$m, $[\rm N{\small II}]$ 122-$\mu$m, $[\rm O{\small III}]$ 88-$\mu$m, $[\rm O{\small III}]$ 52-$\mu$m, $[\rm O{\small I}]$ 63-$\mu$m, and the absorption doublet of OH at 119-$\mu$m, at high fidelity. We find that the average electron densities traced by the $[\rm N{\small II}]$ and $[\rm O{\small III}]$ lines are higher than the average values in local star-forming galaxies and ULIRGs, using the same tracers. From the $[\rm N{\small II}]/[\rm C{\small II}]$ and $[\rm O{\small I}]/[\rm C{\small II}]$ ratios, we find that the $[\rm C{\small II}]$ emission is likely dominated by the photo-dominated regions (PDR), instead of by ionised gas or large-scale shocks.<br />Comment: 39 pages, 19 figures, Accepted for publication in MNRAS. For extra pptx slides prepared for this work, please see http://www.eso.org/~zzhang/download/FTS_SMG_survey_ZhiyuZhang.pdf

Details

ISSN :
13652966 and 00358711
Volume :
481
Database :
OpenAIRE
Journal :
Monthly Notices of the Royal Astronomical Society
Accession number :
edsair.doi.dedup.....4d9181e6e23b904fdf4040eb3dc0b96d
Full Text :
https://doi.org/10.1093/mnras/sty2082