Literature DB >> 29142326

Complex organic molecules in strongly UV-irradiated gas.

S Cuadrado1, J R Goicoechea1, J Cernicharo1, A Fuente2, J Pety3,4, B Tercero1.   

Abstract

We investigate the presence of complex organic molecules (COMs) in strongly UV-irradiated interstellar molecular gas. We have carried out a complete millimetre (mm) line survey using the IRAM 30 m telescope towards the edge of the Orion Bar photodissociation region (PDR), close to the H2 dissociation front, a position irradiated by a very intense far-UV (FUV) radiation field. These observations have been complemented with 8.5″ resolution maps of the H2CO JKa,Kc = 51,5 → 41,4 and C18O J = 3 → 2 emission at 0.9 mm. Despite being a harsh environment, we detect more than 250 lines from COMs and related precursors: H2CO, CH3OH, HCO, H2CCO, CH3CHO, H2CS, HCOOH, CH3CN, CH2NH, HNCO, [Formula: see text] and HC3N (in decreasing order of abundance). For each species, the large number of detected lines allowed us to accurately constrain their rotational temperatures (Trot) and column densities (N). Owing to subthermal excitation and intricate spectroscopy of some COMs (symmetric- and asymmetric-top molecules such as CH3CN and H2CO, respectively), a correct determination of N and Trot requires building rotational population diagrams of their rotational ladders separately. The inferred column densities are in the 1011 - 1013cm-2 range. We also provide accurate upper limit abundances for chemically related molecules that might have been expected, but are not conclusively detected at the edge of the PDR (HDCO, CH3O, CH3NC, CH3CCH, CH3OCH3, HCOOCH3, CH3CH2OH, CH3CH2CN, and CH2CHCN). A non-thermodynamic equilibrium excitation analysis for molecules with known collisional rate coefficients suggests that some COMs arise from different PDR layers but we cannot resolve them spatially. In particular, H2CO and CH3CN survive in the extended gas directly exposed to the strong FUV flux (Tk = 150 - 250 K and Td ≳ 60 K), whereas CH3OH only arises from denser and cooler gas clumps in the more shielded PDR interior (Tk = 40 - 50 K). The non-detection of HDCO towards the PDR edge is consistent with the minor role of pure gas-phase deuteration at very high temperatures. We find a HCO/H2CO/CH3OH ≃ 1/5/3 abundance ratio. These ratios are different from those inferred in hot cores and shocks. Taking into account the elevated gas and dust temperatures at the edge of the Bar (mostly mantle-free grains), we suggest the following scenarios for the formation of COMs: (i) hot gas-phase reactions not included in current models; (ii) warm grain-surface chemistry; or (iii) the PDR dynamics is such that COMs or precursors formed in cold icy grains deeper inside the molecular cloud desorb and advect into the PDR.

Entities:  

Keywords:  ISM: abundances; ISM: molecules; ISM: photon-dominated region (PDR); astrochemistry; surveys

Year:  2017        PMID: 29142326      PMCID: PMC5683355          DOI: 10.1051/0004-6361/201730459

Source DB:  PubMed          Journal:  Astron Astrophys        ISSN: 0004-6361            Impact factor:   5.802


  7 in total

1.  The Millimeter- and Submillimeter-Wave Spectrum of HC(3)N in the Ground and Vibrationally Excited States.

Authors: 
Journal:  J Mol Spectrosc       Date:  2000-11       Impact factor: 1.507

2.  The spectrum of Orion-KL at 2 millimeters (150-160 GHz).

Authors:  L M Ziurys; D McGonagle
Journal:  Astrophys J Suppl Ser       Date:  1993-11       Impact factor: 8.136

3.  Anatomy of the photodissociation region in the orion bar.

Authors:  A G Tielens; M M Meixner; P P van der Werf; J Bregman; J A Tauber; J Stutzki; D Rank
Journal:  Science       Date:  1993-10-01       Impact factor: 47.728

4.  Detection of a branched alkyl molecule in the interstellar medium: iso-propyl cyanide.

Authors:  Arnaud Belloche; Robin T Garrod; Holger S P Müller; Karl M Menten
Journal:  Science       Date:  2014-09-26       Impact factor: 47.728

5.  Chemical complexity in the horsehead photodissociation region.

Authors:  Viviana V Guzmán; Jérôme Pety; Pierre Gratier; Javier R Goicoechea; Maryvonne Gerin; Evelyne Roueff; Franck Le Petit; Jacques Le Bourlot
Journal:  Faraday Discuss       Date:  2014       Impact factor: 4.008

6.  VELOCITY-RESOLVED [C ii] EMISSION AND [C ii]/FIR MAPPING ALONG ORION WITH HERSCHEL.

Authors:  Javier R Goicoechea; D Teyssier; M Etxaluze; P F Goldsmith; V Ossenkopf; M Gerin; E A Bergin; J H Black; J Cernicharo; S Cuadrado; P Encrenaz; E Falgarone; A Fuente; A Hacar; D C Lis; N Marcelino; G J Melnick; H S P Müller; C Persson; J Pety; M Röllig; P Schilke; R Simon; R L Snell; J Stutzki
Journal:  Astrophys J       Date:  2015-10-10       Impact factor: 5.874

7.  Compression and ablation of the photo-irradiated molecular cloud the Orion Bar.

Authors:  Javier R Goicoechea; Jérôme Pety; Sara Cuadrado; José Cernicharo; Edwige Chapillon; Asunción Fuente; Maryvonne Gerin; Christine Joblin; Nuria Marcelino; Paolo Pilleri
Journal:  Nature       Date:  2016-08-10       Impact factor: 49.962

  7 in total
  1 in total

1.  Zero- and high-pressure mechanisms in the complex forming reactions of OH with methanol and formaldehyde at low temperatures.

Authors:  Fedor Naumkin; Pablo Del Mazo-Sevillano; Alfredo Aguado; Yury V Suleimanov; Octavio Roncero
Journal:  ACS Earth Space Chem       Date:  2019-05-14       Impact factor: 3.475

  1 in total

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