Published November 10, 2011 | Version v1
Journal article

WATER VAPOR EMISSION REVEALS A HIGHLY OBSCURED, STAR-FORMING NUCLEAR REGION IN THE QSO HOST GALAXY APM 08279+5255 AT z = 3.9

  • 1. Leiden Observatory, Leiden University, P.O. Box 9513, NL-2300 RA Leiden (Netherlands)
  • 2. Kapteyn Astronomical Institute, University of Groningen, P.O. Box 800, NL-9700 AV Groningen (Netherlands)
  • 3. Astronomy Department, California Institute of Technology, MC 249-17, 1200 East California Boulevard, Pasadena, CA 91125 (United States)
  • 4. IRAM, 300 Rue de la Piscine, 38406 St. Martin d'Heres, Grenoble (France)
  • 5. Max-Planck-Institut für Radioastronomie, Auf dem Hügel 16, Bonn, D-53121 (Germany)
  • 6. Max-Planck-Institut für Astronomie, Königstuhl 17, Heidelberg, D-69117 (Germany)

Description

We present the detection of four rotational emission lines of water vapor, from energy levels Eu/k = 101-454 K, in the gravitationally lensed z = 3.9 QSO host galaxy APM 08279+5255. While the lowest H2 O lines are collisionally excited in clumps of warm, dense gas (density of hydrogen nuclei nH = (3.1 ± 1.2) x 106 cm-3, gas temperature Tg ∼ 105 ± 21 K), we find that the excitation of the higher lines is dominated by the intense local infrared radiation field. Since only collisionally excited emission contributes to gas cooling, we conclude that H2 O is not a significant coolant of the warm molecular gas. Our excitation model requires the radiatively excited gas to be located in an extended region of high 100 μ m opacity (τ100 = 0.9 ± 0.2). Locally, such extended infrared-opaque regions are found only in the nuclei of ultraluminous infrared galaxies. We propose a model where the infrared-opaque circumnuclear cloud, which is penetrated by the X-ray radiation field of the QSO nucleus, contains clumps of massive star formation where the H2 O emission originates. The radiation pressure from the intense local infrared radiation field exceeds the thermal gas pressure by about an order of magnitude, suggesting close to Eddington-limited star formation in these clumps.

Availability note (English)

Available from http://dx.doi.org/10.1088/2041-8205/741/2/L38

Additional details

Identifiers

Publishing Information

Journal Title
Astrophysical Journal Letters
Journal Volume
741
Journal Issue
2
Journal Page Range
[5 p.]
ISSN
2041-8205