4.7 Article

HERSCHEL* MEASUREMENTS OF MOLECULAR OXYGEN IN ORION

Journal

ASTROPHYSICAL JOURNAL
Volume 737, Issue 2, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/737/2/96

Keywords

astrochemistry; ISM: abundances; ISM: individual objects (Orion); ISM: molecules; submillimeter: ISM

Funding

  1. NSF [AST-0540882]
  2. National Aeronautics and Space Administration
  3. Science and Technology Facilities Council [ST/I001557/1, ST/F002092/1, ST/F501761/1] Funding Source: researchfish
  4. STFC [ST/F501761/1, ST/F002092/1, ST/I001557/1] Funding Source: UKRI

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We report observations of three rotational transitions of molecular oxygen (O-2) in emission from the H-2 Peak 1 position of vibrationally excited molecular hydrogen in Orion. We observed the 487 GHz, 774 GHz, and 1121 GHz lines using the Heterodyne Instrument for the Far Infrared on the Herschel Space Observatory, having velocities of 11 km s(-1) to 12 km s(-1) and widths of 3 km s(-1). The beam-averaged column density is N(O-2) = 6.5 x 10(16) cm(-2), and assuming that the source has an equal beam-filling factor for all transitions (beam widths 44, 28, and 19 ''), the relative line intensities imply a kinetic temperature between 65 K and 120 K. The fractional abundance of O-2 relative to H-2 is (0.3-7.3) x 10(-6). The unusual velocity suggests an association with a similar to 5 '' diameter source, denoted Peak A, the Western Clump, or MF4. The mass of this source is similar to 10 M-circle dot and the dust temperature is >= 150 K. Our preferred explanation of the enhanced O-2 abundance is that dust grains in this region are sufficiently warm (T >= 100 K) to desorb water ice and thus keep a significant fraction of elemental oxygen in the gas phase, with a significant fraction as O-2. For this small source, the line ratios require a temperature >= 180 K. The inferred O-2 column density similar or equal to 5 x 10(18) cm(-2) can be produced in Peak A, having N(H-2) similar or equal to 4 x 10(24) cm(-2). An alternative mechanism is a low-velocity (10-15 km s(-1)) C-shock, which can produce N(O-2) up to 10(17) cm(-2).

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