A new study of the chemical structure of the Horsehead nebula: the influence of grain-surface chemistry
arXiv:1706.00454 · doi:10.1051/0004-6361/201730980
Abstract
A wide variety of molecules have recently been detected in the Horsehead nebula photodissociation region (PDR) suggesting that: (i) gas-phase and grain chemistries should both contribute to the formation of organic molecules, and (ii) far-ultraviolet (FUV) photodesorption may explain the release into the gas phase of grain surface species. In order to tackle these specific problems and more generally in order to better constrain the chemical structure of these types of environments we present a study of the Horsehead nebula gas-grain chemistry. To do so we used the 1D astrochemical gas-grain code Nautilus with an appropriate physical structure computed with the Meudon PDR Code and compared our modeled outcomes with published observations and with previously modeled results when available. The use of a large set of chemical reactions coupled with the time-dependent code Nautilus allows us to reproduce most of the observations well, including those of the first detections in a PDR of the organic molecules HCOOH, CH2CO, CH3CHO and CH3CCH, which are mostly associated with hot cores. We also provide some abundance predictions for other molecules of interest. Understanding the chemistry behind the detection of these organic molecules is crucial to better constrain the environments these molecules can probe.
17 pages, 10 figures, 4 tables, accepted for publication in A&A
References in corpus (18)
- Complex Chemistry in Star-Forming Regions: An Expanded Gas-Grain Warm-up Chemical Model
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- Testing grain-surface chemistry in massive hot-core regions
- Polycylcic Aromatic Hydrocarbons (PAH's) in dense cloud chemistry
- Formation of complex organic molecules in cold objects: the role of gas phase reactions
- The cometary composition of a protoplanetary disk as revealed by complex cyanides
- Binding energies: new values and impact on the efficiency of chemical desorption
- Modeling Complex Organic Molecules in dense regions: Eley-Rideal and complex induced reaction
- Low sulfur depletion in the Horsehead PDR
- The chemistry and spatial distribution of small hydrocarbons in UV-irradiated molecular clouds: the Orion Bar PDR
- Search for anions in molecular sources: C4H- detection in L1527
- Spatially resolved l-c3h+ emission in the horsehead photodissociation region: Further evidence for a top-down hydrocarbon chemistry
- HCO mapping of the Horsehead : Tracing the illuminated dense molecular cloud surfaces
- Complex organic molecules in strongly UV-irradiated gas
- Trans-cis molecular photoswitching in interstellar Space
- The Abundance of Interstellar Fluorine and Its Implications
- Search for methylamine in high mass hot cores
- A CSO Search for -CH: Detection in the Orion Bar PDR
Cited by in corpus (24)
- Astrochemistry and compositions of planetary systems
- Sulfur chemistry in protoplanetary disks: CS and H2CS
- ALMA-IMF I -- Investigating the origin of stellar masses: Introduction to the Large Program and first results
- Gas phase Elemental abundances in Molecular cloudS (GEMS). II. On the quest for the sulphur reservoir in molecular clouds: the case
- First detection of interstellar S2H
- Gas phase Elemental abundances in Molecular cloudS (GEMS). IV. Observational results and statistical trends
- The role of C/O in nitrile astrochemistry in PDRs and planet-forming disks
- The Role of Acetylene in the Chemical Evolution of Carbon Complexity
- Surface Diffusion of Carbon Atoms as a Driver of Interstellar Organic Chemistry
- Revisiting the reactivity between HCO and CH on interstellar grain surfaces
- Dust evolution across the Horsehead Nebula
- AB Aur, a Rosetta stone for studies of planet formation (II): HS detection and sulfur budget
- Impact of PAH photodissociation on the formation of small hydrocarbons in the Orion Bar and the Horsehead PDRs
- JWST observations of the Horsehead photon-dominated region I. First results from multi-band near- and mid-infrared imaging
- Dark cloud-type chemistry in PDRs with moderate UV field
- A recent update of gas-phase chemical reactions and molecular lines in CLOUDY: its effects on millimeter and sub-millimeter molecular line predictions
- Characterization of acetonitrile ice irradiated by X-rays employing the PROCODA code: II. Desorption processes
- Impact of HAC evolution on the formation of small hydrocarbons in the Orion Bar and the Horsehead PDRs
- Ethynyl around the HII regions S255 and S257
- Different molecular filament widths as tracers of accretion onto filaments
- Chemical compositions in the vicinity of protostars in Ophiuchus
- Molecules with ALMA at Planet-forming Scales (MAPS) XII: Inferring the C/O and S/H ratios in Protoplanetary Disks with Sulfur Molecules
- JWST observations of photodissociation regions III. Dust modelling at the illuminated edge of the Horsehead PDR
- Spatial distribution of organics in the Horsehead nebula: Signposts of chemistry driven by atomic carbon