Spatially resolved l-c3h+ emission in the horsehead photodissociation region: Further evidence for a top-down hydrocarbon chemistry
arXiv:1502.02325 · doi:10.1088/2041-8205/800/2/L33
Abstract
Small hydrocarbons, such as C2H, C3H and C3H2 are more abundant in photo-dissociation regions (PDRs) than expected based on gas-phase chemical models. To explore the hydrocarbon chemistry further, we observed a key intermediate species, the hydrocarbon ion l-C3H+, in the Horsehead PDR with the Plateau de Bure Interferometer at high-angular resolution (6''). We compare with previous observations of C2H and c-C3H2 at similar angular resolution and new gas-phase chemical model predictions to constrain the dominant formation mechanisms of small hydrocarbons in low-UV flux PDRs. We find that, at the peak of the HCO emission (PDR position), the measured l-C3H+, C2H and c-C3H2 abundances are consistent with current gas-phase model predictions. However, in the first PDR layers, at the 7.7 mum PAH band emission peak, which are more exposed to the radiation field and where the density is lower, the C2H and c-C3H2 abundances are underestimated by an order of magnitude. At this position, the l-C3H+ abundance is also underpredicted by the model but only by a factor of a few. In addition, contrary to the model predictions, l-C3H+ peaks further out in the PDR than the other hydrocarbons, C2H and c-C3H2. This cannot be explained by an excitation effect. Current gas-phase photochemical models thus cannot explain the observed abundances of hydrocarbons, in particular in the first PDR layers. Our observations are consistent with a top-down hydrocarbon chemistry, in which large polyatomic molecules or small carbonaceous grains are photo-destroyed into smaller hydrocarbon molecules/precursors.
6 pages, 3 figures, 2 tables. Accepted for publication in ApJL
References in corpus (1)
Cited by in corpus (38)
- Photochemistry and astrochemistry: photochemical pathways to interstellar complex organic molecules
- Astrochemistry and compositions of planetary systems
- The anatomy of the Orion B Giant Molecular Cloud: A local template for studies of nearby galaxies
- PDRs4All: A JWST Early Release Science Program on radiative feedback from massive stars
- First detection of interstellar S2H
- Complex organic molecules in strongly UV-irradiated gas
- Formation of NH2CHO and CH3CHO upon UV photoprocessing of interstellar ice analogs
- Carbon-Chain Chemistry in the Interstellar Medium
- The role of C/O in nitrile astrochemistry in PDRs and planet-forming disks
- Discovery of C5H+ and detection of C3H+ in TMC-1 with the QUIJOTE line survey
- Early Planet Formation in Embedded Disks (eDisk) III: A first high-resolution view of sub-mm continuum and molecular line emission toward the Class 0 protostar L1527 IRS
- A new study of the chemical structure of the Horsehead nebula: the influence of grain-surface chemistry
- Destruction of refractory carbon grains drives the final stage of proto-planetary disk chemistry
- Machine Learning of Interstellar Chemical Inventories
- Desorption Kinetics and Binding Energies of Small Hydrocarbons
- Photodissociation of aliphatic PAH derivatives under relevant astrophysical conditions
- Tracers of the ionization fraction in dense and translucent gas: I. Automated exploitation of massive astrochemical model grids
- Chemical footprints of giant planet formation. Role of planet accretion in shaping the C/O ratio of protoplanetary disks
- Quantitative inference of the column densities from 3 mm molecular emission: A case study towards Orion B
- Impact of PAH photodissociation on the formation of small hydrocarbons in the Orion Bar and the Horsehead PDRs
- PDRs4All XI. Detection of infrared CH and CH rovibrational emission in the Orion Bar and disk d203-506: evidence of chemical pumping
- PDRs4All. XII. FUV-driven formation of hydrocarbon radicals and their relation with PAHs
- Physical conditions for dust grain alignment in Class 0 protostellar cores I. Observations of dust polarization and molecular irradiation tracers
- JWST observations of the Horsehead photon-dominated region I. First results from multi-band near- and mid-infrared imaging
- Revealing the chemical structure of the Class I disc Oph-IRS 67
- HyGAL: Characterizing the Galactic ISM with observations of hydrides and other small molecules II. The absorption line survey with the IRAM 30 m telescope
- Impact of HAC evolution on the formation of small hydrocarbons in the Orion Bar and the Horsehead PDRs
- A derivation of nano-diamond optical constants: Here be nano-diamonds
- Ethynyl around the HII regions S255 and S257
- Carbon accretion and desorption by interstellar polycyclic aromatic hydrocarbons
- Toward a robust physical and chemical characterization of heterogeneous lines of sight: The case of the Horsehead nebula
- Early Planet Formation in Embedded Disks (eDisk). XX. Constraining the Chemical Tracers of Young Protostellar Sources
- The essential elements of dust evolution: a-C(:H) nanoparticle sub-structures and photo-fragmentation
- Spectral survey of the diffuse gas toward BL Lac in the Q band
- High-resolution ro-vibrational and rotational spectroscopy of the open-shell, linear CCH ion ()
- Interstellar Hydrocarbons: Degradation Chemistry in Diffuse Clouds
- Which molecule traces what: chemical diagnostics of protostellar sources
- Spatial distribution of organics in the Horsehead nebula: Signposts of chemistry driven by atomic carbon