English

High angular resolution near-IR view of the Orion Bar revealed by Keck/NIRC2

Astrophysics of Galaxies 2023-05-24 v1 Solar and Stellar Astrophysics

Abstract

Nearby Photo-Dissociation Regions (PDRs), where the gas and dust are heated by the far UV-irradiation emitted from stars, are ideal templates to study the main stellar feedback processes. With this study we aim to probe the detailed structures at the interfaces between ionized, atomic, and molecular gas in the Orion Bar. This nearby prototypical strongly irradiated PDR will be among the first targets of the James Webb Space Telescope (JWST) within the framework of the PDRs4All Early Release Science program. We employed the sub-arcsec resolution accessible with Keck-II NIRC2 and its adaptive optics system to obtain the most detailed and complete images, ever performed, of the vibrationally excited line H2_2 1-0 S(1) at 2.12~μ\mum, tracing the dissociation front, and the [FeII] and Brγ\gamma lines, at 1.64 and 2.16~μ\mum respectively, tracing the ionization front. We obtained narrow-band filter images in these key gas line diagnostic over 40\sim 40'' at spatial scales of \sim0.1'' (\sim0.0002~pc or \sim40~AU at 414~pc). The Keck/NIRC2 observations spatially resolve a plethora of irradiated sub-structures such as ridges, filaments, globules and proplyds. A remarkable spatial coincidence between the H2_2 1-0 S(1) vibrational and HCO+^+ J=4-3 rotational emission previously obtained with ALMA is observed. This likely indicates the intimate link between these two molecular species and highlights that in high pressure PDR the H/H2_2 and C+^+/C/CO transitions zones come closer as compared to a typical layered structure of a constant density PDR. This is in agreement with several previous studies that claimed that the Orion Bar edge is composed of very small, dense, highly irradiated PDRs at high thermal pressure immersed in a more diffuse environment.

Keywords

Cite

@article{arxiv.2206.08245,
  title  = {High angular resolution near-IR view of the Orion Bar revealed by Keck/NIRC2},
  author = {Emilie Habart and Romane Le Gal and Carlos Alvarez and Els Peeters and Olivier Berné and Mark G. Wolfire and Javier R. Goicoechea and Thiébaut Schirmer and Emeric Bron and Markus Röllig},
  journal= {arXiv preprint arXiv:2206.08245},
  year   = {2023}
}