Exploring the Origins of Carbon in Terrestrial Worlds
arXiv:1405.7394 · doi:10.1039/C4FD00003J
Abstract
Given the central role of carbon in the chemistry of life, it is a fundamental question as to how carbon is supplied to the Earth, in what form and when. We provide an accounting of carbon found in solar system bodies, in particular a comparison between the organic content of meteorites and that in identified organics in the dense interstellar medium (ISM). Based on this accounting identified organics created by the chemistry of star formation could contain at most ~15% of the organic carbon content in primitive meteorites and significantly less for cometary organics, which represent the putative contributors to starting materials for the Earth. In the ISM ~30% of the elemental carbon is found in CO, either in the gas or ices, with a typical abundance of ~10^-4 (relative to H2). Recent observations of the TW Hya disk find that the gas phase abundance of CO is reduced by an order of magnitude compared to this value. We explore a solution where the volatile CO is destroyed via a gas phase processes, providing an additional source of carbon for organic material to be incorporated into planetesimals and cometesimals. This chemical processing mechanism requires warm grains (> 20 K), partially ionized gas, and sufficiently small <10 micron grains, i.e. a larger total grain surface area, such that freeze-out is efficient. Under these conditions static (non-turbulent) chemical models predict that a large fraction of the carbon nominally sequestered in CO can be the source of carbon for a wide variety of organics that are present as ice coatings on the surfaces of warm pre-planetesimal dust grains.
19 pages, 7 figures, to appear in Faraday Disc., vol 168, 2014, DOI: 10.1039/C4FD00003J
References in corpus (5)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The origins and concentrations of water, carbon, nitrogen and noble gases on Earth
- Complex Chemistry in Star-Forming Regions: An Expanded Gas-Grain Warm-up Chemical Model
- Building Terrestrial Planets
- Present-day cosmic abundances. A comprehensive study of nearby early B-type stars and implications for stellar and Galactic evolution and interstellar dust models
Cited by in corpus (31)
- On the diversity and statistical properties of protostellar discs
- Protoplanetary disk masses from CO isotopologues line emission
- Lupus disks with faint CO isotopologues: low gas/dust or large carbon depletion?
- Hydrocarbon emission rings in protoplanetary disks induced by dust evolution
- The Coupled Physical Structure of Gas and Dust in the IM Lup Protoplanetary Disk
- Molecules with ALMA at Planet-forming Scales (MAPS) V: CO gas distributions
- CO Depletion in Protoplanetary Disks: A Unified Picture Combining Physical Sequestration and Chemical Processing
- HD far infrared emission as a measure of protoplanetary disk mass
- Unveiling shrouded oceans on temperate sub-Neptunes via transit signatures of solubility equilibria vs. gas thermochemistry
- A dust and gas cavity in the disc around CQ Tau revealed by ALMA
- Molecules with ALMA at Planet-forming Scales (MAPS) XIII: HCO and disk ionization structure
- Observing Carbon & Oxygen Carriers in Protoplanetary Disks at Mid-infrared Wavelengths
- Turbulent-diffusion Mediated CO Depletion in Weakly Turbulent Protoplanetary disks
- The Effects of Initial Abundances on Nitrogen in Protoplanetary Disks
- X-ray radiative transfer in protoplanetary disks - The role of dust and X-ray background fields
- Tracing pebble drift and trapping using radial carbon depletion profiles in protoplanetary disks
- Constraining the radial drift of millimeter-sized grains in the protoplanetary disks in Lupus
- CO emission as an effective measure of gas masses of protoplanetary disks
- Effect of MHD wind-driven disk evolution on the observed sizes of protoplanetary disks
- Chemistry in a forming protoplanetary disk: main accretion phase
- On the stickiness of CO and HO ice particles
- Different degrees of nitrogen and carbon depletion in the warm molecular layers of protoplanetary disks
- The TW Hya Rosetta Stone Project IV: A hydrocarbon rich disk atmosphere
- Modeling Nitrogen Fractionation in the Protoplanetary Disk around TW Hya: Model Constraints on Grain Population and Carbon-to-Oxygen Elemental Abundance Ratio
- The Effects of Protostellar Disk Turbulence on CO Emission Lines: A Comparison Study of Disks with Constant CO Abundance vs. Chemically Evolving Disks
- CO isotopolog line fluxes of viscously evolving disks: cold CO conversion insufficient to explain observed low fluxes
- Vertical CO surfaces as a probe for protoplanetary disk mass and carbon depletion
- The gas disk: Evolution and chemistry
- Interstellar carbonaceous dust erosion induced by X-ray irradiation of water ice in star-forming regions
- Molecules with ALMA at Planet-forming Scales (MAPS) VIII: CO Gap in AS 209--Gas Depletion or Chemical Processing?
- Molecules with ALMA at Planet-forming Scales (MAPS) XVII: Determining the 2D Thermal Structure of the HD 163296 Disk