Indirect ultraviolet photodesorption from CO:N2 binary ices - an efficient grain-gas process
arXiv:1312.4571 · doi:10.1088/0004-637X/779/2/120
Abstract
UV ice photodesorption is an important non-thermal desorption pathway in many interstellar environments that has been invoked to explain observations of cold molecules in disks, clouds and cloud cores. Systematic laboratory studies of the photodesorption rates, between 7 and 14 eV, from CO:N2 binary ices, have been performed at the DESIRS vacuum UV beamline of the synchrotron facility SOLEIL. The photodesorption spectral analysis demonstrates that the photodesorption process is indirect, i.e. the desorption is induced by a photon absorption in sub-surface molecular layers, while only surface molecules are actually desorbing. The photodesorption spectra of CO and N2 in binary ices therefore depend on the absorption spectra of the dominant species in the subsurface ice layer, which implies that the photodesorption efficiency and energy dependence are dramatically different for mixed and layered ices compared to pure ices. In particular, a thin (1-2 ML) N2 ice layer on top of CO will effectively quench CO photodesorption, while enhancing N2 photodesorption by a factors of a few (compared to the pure ices) when the ice is exposed to a typical dark cloud UV field, which may help to explain the different distributions of CO and N2H+ in molecular cloud cores. This indirect photodesorption mechanism may also explain observations of small amounts of complex organics in cold interstellar environments.
21 pages 5 figures
References in corpus (4)
- The c2d Spitzer spectroscopic survey of ices around low-mass young stellar objects II: CO2
- The abundances of nitrogen-containing molecules during pre-protostellar collapse
- Nitrogen hydrides in interstellar gas II. Analysis of Herschel/HIFI observations towards W49N and G10.6-0.4 (W31C)
- How Hot is the Wind from TW Hydrae?
Cited by in corpus (54)
- Gas and grain chemical composition in cold cores as predicted by the Nautilus 3-phase model
- Astrochemistry and compositions of planetary systems
- Binding energies: new values and impact on the efficiency of chemical desorption
- First detection of gas-phase methanol in a protoplanetary disk
- Dust as interstellar catalyst I. Quantifying the chemical desorption process
- Atom addition reactions in interstellar ice analogues
- Astrochemistry of dust, ice and gas: introduction and overview
- UV photodesorption of methanol in pure and CO-rich ices: desorption rates of the intact molecule and of the photofragments
- Deuterated methanol in the pre-stellar core L1544
- On Cosmic Ray-Driven Grain Chemistry in Cold Core Models
- Sulfur chemistry in protoplanetary disks: CS and H2CS
- CO and N desorption energies from water ice
- Robustness of N2H+ as tracer of the CO snowline
- The negligible photodesorption of methanol ice and the active photon-induced desorption of its irradiation products
- The problematic growth of dust in high redshift galaxies
- Reactive Desorption of CO Hydrogenation Products under Cold Pre-stellar Core Conditions
- Complex organic molecules in low-mass protostars on Solar System scales -- II. Nitrogen-bearing species
- Chemical desorption versus energy dissipation: insights from ab-initio molecular dynamics of HCO formation
- The chemistry of disks around T Tauri and Herbig Ae/Be stars
- Tracing extended low-velocity shocks through SiO emission - Case study of the W43-MM1 ridge
- Observations of nitrogen isotope fractionation in deeply embedded protostars
- Spectrally-resolved UV photodesorption of CH4 in pure and layered ices
- Dust as interstellar catalyst - II. How chemical desorption impacts the gas
- Study of the photon-induced formation and subsequent desorption of CH3 OH and H2 CO in interstellar ice analogs
- Depletion of heavy nitrogen in the cold gas of star-forming regions
- A three-phase approach to grain surface chemistry in protoplanetary disks: Gas, ice surfaces and ice mantles of dust grains
- Laboratory and Computational Studies of Interstellar Ices
- 1I/'Oumuamua as an N2 ice fragment of an exo-Pluto surface: I. size and compositional constraints
- Methanol ice co-desorption as a mechanism to explain cold methanol in the gas-phase
- A new study of the chemical structure of the Horsehead nebula: the influence of grain-surface chemistry
- How chemistry influences cloud structure, star formation, and the IMF
- UV photoprocessing of NH3 ice: photon-induced desorption mechanisms
- The efficiency of photodissociation for molecules in interstellar ices
- The Role of Radiolysis in the Modelling of CHO Isomers and Dimethyl Ether in Cold Dark Clouds
- The effect of selective desorption mechanisms during interstellar ice formation
- Density and infrared band strength of interstellar carbon monoxide (CO) ice analogues
- Photoreactivity of condensed acetylene on Titan aerosols analogues
- H2 chemistry in interstellar ices: the case of CO ice hydrogenation in UV irradiated CO:H2 ice mixtures
- Tracing the atomic nitrogen abundance in star-forming regions with ammonia deuteration
- Photodesorption of acetonitrile CH3CN in UV-irradiated regions of the Interstellar Medium: an experimental evidence
- Protoplanetary disks: Sensitivity of the chemical composition to various model parameters
- Chemical evolution of the gas in C-type shocks in dark clouds
- Accretion and photodesorption of CO ice as a function of the incident angle of deposition
- Mechanism of Indirect Photon-induced Desorption at the Water Ice Surface
- Vacuum ultraviolet photodesorption and photofragmentation of formaldehyde-containing ices
- Modeling Nitrogen Fractionation in the Protoplanetary Disk around TW Hya: Model Constraints on Grain Population and Carbon-to-Oxygen Elemental Abundance Ratio
- Cosmic-ray-induced dissociation and reactions in warm interstellar ices
- CO and CO ice mixtures with N in photon energy transfer studies
- Resonant infrared irradiation of CO and CH3OH interstellar ices
- On Modelling Sputtering of Interstellar Grain Ices
- Photochemistry of interstellar ice forming Complex Organic Molecules
- A multigrain-multilayer astrochemical model with variable desorption energy for surface species
- Indirect X-ray photodesorption of 15N2 and 13CO from mixed and layered ices
- Flux and fluence effects on the Vacuum-UV photodesorption and photoprocessing of CO ices