Gas-phase CO depletion and N2H+ abundances in starless cores
arXiv:1308.2958 · doi:10.1051/0004-6361/201322129
Abstract
Seven isolated, nearby low-mass starless molecular cloud cores have been observed as part of the Herschel key program Earliest Phases of Star formation (EPoS). By applying a ray-tracing technique to the obtained continuum emission and complementary (sub)mm emission maps, we derive the physical structure (density, dust temperature) of these cloud cores. We present observations of the 12CO, 13CO, and C18O (2-1) and N2H+ (1-0) transitions towards the same cores. Based on the density and temperature profiles, we apply time-dependent chemical and line-radiative transfer modeling and compare the modeled to the observed molecular emission profiles. CO is frozen onto the grains in the center of all cores in our sample. The level of CO depletion increases with hydrogen density and ranges from 46% up to more than 95% in the core centers in the core centers in the three cores with the highest hydrogen density. The average hydrogen density at which 50% of CO is frozen onto the grains is 1.1+-0.4 10^5 cm^-3. At about this density, the cores typically have the highest relative abundance of N2H+. The cores with higher central densities show depletion of N2H+ at levels of 13% to 55%. The chemical ages for the individual species are on average 2+-1 10^5 yr for 13CO, 6+-3 10^4 yr for C18O, and 9+-2 10^4 yr for N2H+. Chemical modeling indirectly suggests that the gas and dust temperatures decouple in the envelopes and that the dust grains are not yet significantly coagulated. We observationally confirm chemical models of CO-freezeout and nitrogen chemistry. We find clear correlations between the hydrogen density and CO depletion and the emergence of N2H+. The chemical ages indicate a core lifetime of less than 1 Myr.
24 pages, 25 figures, Accepted for publication in Astronomy and Astrophysics
References in corpus (11)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Formation of methyl formate and other organic species in the warm-up phase of hot molecular cores
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- Reactive Desorption and Radiative Association as Possible Drivers of Complex Molecule Formation in the Cold Interstellar Medium
- Photoprocesses in protoplanetary disks
- 2MASS wide field extinction maps - I. The Pipe nebula
- The Different Structures of the Two Classes of Starless Cores
- The Earliest Phases of Star formation observed with Herschel (EPoS): The dust temperature and density distributions of B68
- The Thermal Structure of Gas in Pre-Stellar Cores: A Case Study of Barnard 68
- CB17: Inferring the dynamical history of a prestellar core with chemo-dynamical models
- Do we need to know the temperature in prestellar cores?
Cited by in corpus (35)
- Atom addition reactions in interstellar ice analogues
- Gas phase Elemental abundances in Molecular cloudS (GEMS) I. The prototypical dark cloud TMC 1
- Is atomic carbon a good tracer of molecular gas in metal-poor galaxies?
- Synthetic CO observations of fibrous filaments: the problems of mapping from PPV to PPP
- Prevalence of Complex Organic Molecules in Starless and Prestellar Cores within the Taurus Molecular Cloud
- CARMA Large Area Star Formation Survey: Structure and Kinematics of Dense Gas in Serpens Main
- Parameterizing the interstellar dust temperature
- Dust properties inside molecular clouds from coreshine modeling and observations
- Dense gas kinematics and a narrow filament in the Orion A OMC1 region using NH3
- Mass Assembly of Stellar Systems and Their Evolution with the SMA (MASSES). Multiplicity and the Physical Environment in L1448N
- Grain size limits derived from 3.6 μm and 4.5 μm coreshine
- Detection of Complex Organic Molecules in Young Starless Core L1521E
- Multi-scale analysis of the Monoceros OB 1 star-forming region: II. Colliding filaments in the Monoceros OB1 molecular cloud
- Interplay of gas and ice during cloud evolution
- The efficiency of photodissociation for molecules in interstellar ices
- Earliest phases of star formation (EPoS): Dust temperature distributions in isolated starless cores
- Filament rotation in the California L1482 cloud
- Physical and chemical modeling of the starless core L1512
- A Herschel view of IC 1396 A: Unveiling the different sequences of star formation
- Chemical significance of different temperature regimes for cosmic-ray-induced heating of whole interstellar grains
- Influence of galactic arm scale dynamics on the molecular composition of the cold and dense ISM I. Observed abundance gradients in dense clouds
- Investigating the role of magnetic fields in star formation using molecular line profiles
- ALMA-IMF XIII: NH kinematic analysis on the intermediate protocluster G353.41
- The Earliest Phases of Star formation (EPoS): Temperature, density, and kinematic structure of the star-forming core CB 17
- The relative orientation between local magnetic field and Galactic plane in low latitude dark clouds
- Three dimensional projection effects on chemistry in a Planck galactic cold clump
- ALMA-IMF XVIII: The assembly of a star cluster: Dense NH (1-0) kinematics in the massive G351.77 protocluster
- VLA and NOEMA view of the Bok Globule CB 17: the starless nature of a proposed FHSC candidate
- Cosmic-ray ionisation rate in low-mass cores: the role of the environment
- Multi-wavelength observations and modelling of a quiescent cloud LDN1512
- The Kinematic and Chemical Properties of a Potential Core-Forming Clump: Perseus B1-E
- Chemical properties of two dense cores in a Planck Galactic Cold Clump G168.72-15.48
- The evolution of CH in Planck Galactic Cold Clumps
- Chemical constraints on the dynamical evolution of the cold core L694
- The role of radiative torques in the molecular cloud core L43