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Excitation of Molecular Hydrogen in the Orion Bar PhotodissociationRegion from a Deep Near-infrared IGRINS Spectrum

  • Kyle F. Kaplan
  • , Harriet L. Dinerstein
  • , Heeyoung Oh
  • , Gregory N. Mace
  • , Hwihyun Kim
  • , Kimberly R. Sokal
  • , Michael D. Pavel
  • , Sungho Lee
  • , Soojong Pak
  • , Chan Park
  • , Jae Sok Oh
  • , Daniel T. Jaffe

Research output: Contribution to journalArticlepeer-review

35 Citations (Scopus)

Abstract

We present a deep near-infrared spectrum of the Orion Bar Photodissociation Region (PDR) taken with the Immersion Grating INfrared Spectrometer (IGRINS) on the 2.7 m telescope at the McDonald Observatory. IGRINS has high spectral resolution (R ~ 45,000) and instantaneous broad wavelength coverage (1.452.45 μm), enabling us to detect 87 emission lines from rovibrationally excited molecular hydrogen (H2) that arise from transitions out of 69 upper rovibration levels of the electronic ground state. These levels cover a large range of rotational and vibrational quantum numbers and excitation energies, making them excellent probes of the excitation mechanisms of H2 and physical conditions within the PDR. The Orion Bar PDR is thought to consist of cooler high density clumps or filaments (T = 50-250 K, nH = 105 107cm-3) embedded in a warmer lower density medium (T = 250-1000 K, nH = 104 105cm-3). We fit a grid of constant temperature and density Cloudy models, which recreate the observed H2 level populations well, to constrain the temperature to a range of 600-650 K and the density to nH = 2.5 × 103 -104cm-3. The best-fit model gives T = 625 K and nH = 5 × 103 cm-3. This well-constrained warm temperature is consistent with kinetic temperatures found by other studies for the Orion Bars lower density medium. However, the range of densities well fit by the model grid is marginally lower than those reported by other studies. We could be observing lower density gas than the surrounding medium, or perhaps a density-sensitive parameter in our models is not properly estimated.

Original languageEnglish
Article number152
JournalAstrophysical Journal
Volume838
Issue number2
DOIs
Publication statusPublished - 1 Apr 2017

Bibliographical note

Publisher Copyright:
© 2017. The American Astronomical Society. All rights reserved.

Keywords

  • ISM: individual objects (Orion Bar)
  • ISM: molecules
  • infrared: ISM
  • photon-dominated region (PDR)
  • techniques: spectroscopic

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