Dynamical properties of a large young disk galaxy at z=2.03
L. van Starkenburg (1), P. P. van der Werf (1), M. Franx (1), I. Labbe, (2), G. Rudnick (3), S. Wuyts (4) ((1) Leiden Observatory, (2) Carnegie, Observatories, (3) NOAO, (4) Harvard-Smithsonian Center for Astrophysics)

TL;DR
This study uses integral field spectroscopy to analyze a high-redshift galaxy, F257, revealing that it closely resembles local disk galaxies in dynamics and structure, with some differences in gas content and stellar mass relations.
Contribution
It demonstrates a novel method for studying high-redshift disk galaxies using integral field spectroscopy in the K band, minimizing biases and providing detailed dynamical analysis.
Findings
F257 has a regular velocity field similar to local late-type galaxies.
Its rotation curve flattens at 1-2 disk scale lengths.
F257's properties align with the local K band Tully-Fisher relation.
Abstract
Context. The study of high redshift Tully-Fisher relations (TFRs) is limited by the use of long slit spectrographs, rest frame B band and star formation selected galaxies. Aims. We try to circumvent these issues by using integral field spectroscopy (SINFONI), by studying the rest frame K band and stellar mass TFR, and by selecting targets without a bias to strongly star forming galaxies. In this paper, we demonstrate our methods on our best case. This galaxy, F257, at z=2.03, was selecte from a sample of candidate high redshift large disk galaxies in the Hubble Deep Field South that were selected with photometric and morphological criteria. Methods. We used SINFONI at the VLT to obtain an integral field spectrum of the Halpha line and hence a velocity field and rotation curve. We also use UBVIJHK+IRAC band photometry to determine a stellar photometric mass. Results. We find that F257 is…
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