Quantification of segregation dynamics in ice mixtures
arXiv:0907.3948 · doi:10.1051/0004-6361/200912464
Abstract
(Abridged) The observed presence of pure CO2 ice in protostellar envelopes is attributed to thermally induced ice segregation, but a lack of quantitative experimental data has prevented its use as a temperature probe. Quantitative segregation studies are also needed to characterize diffusion in ices, which underpins all ice dynamics and ice chemistry. This study aims to quantify the segregation mechanism and barriers in different H2O:CO2 and H2O:CO ice mixtures covering a range of astrophysically relevant ice thicknesses and mixture ratios. The ices are deposited at 16-50 K under (ultra-)high vacuum conditions. Segregation is then monitored at 23-70 K as a function of time, through infrared spectroscopy. Thin (8-37 ML) H2O:CO2/CO ice mixtures segregate sequentially through surface processes, followed by an order of magnitude slower bulk diffusion. Thicker ices (>100 ML) segregate through a fast bulk process. The thick ices must therefore be either more porous or segregate through a different mechanism, e.g. a phase transition. The segregation dynamics of thin ices are reproduced qualitatively in Monte Carlo simulations of surface hopping and pair swapping. The experimentally determined surface-segregation rates for all mixture ratios follow the Ahrrenius law with a barrier of 1080[190] K for H2O:CO2 and 300[100] K for H2O:CO mixtures. During low-mass star formation H2O:CO2 segregation will be important already at 30[5] K. Both surface and bulk segregation is proposed to be a general feature of ice mixtures when the average bond strengths of the mixture constituents in pure ice exceeds the average bond strength in the ice mixture.
Accepted for publication in A&A. 25 pages, including 13 figures
References in corpus (8)
- Complex Chemistry in Star-Forming Regions: An Expanded Gas-Grain Warm-up Chemical Model
- The c2d Spitzer spectroscopic survey of ices around low-mass young stellar objects II: CO2
- Simulation of the Formation and Morphology of Ice Mantles on Interstellar Grains
- Laboratory evidence for efficient water formation in interstellar ices
- The chemical history of molecules in circumstellar disks. I. Ices
- Spatial mapping of ices in the Oph-F core: A direct measurement of CO depletion and the formation of CO2
- Band profiles and band strengths in mixed H2O:CO ices
- Fully Sampled Maps of Ices and Silicates in Front of Cepheus A East with Spitzer
Cited by in corpus (52)
- Observations of the Icy Universe
- The Spitzer ice legacy: Ice evolution from cores to protostars
- Photochemistry and astrochemistry: photochemical pathways to interstellar complex organic molecules
- A three-phase chemical model of hot cores: the formation of glycine
- On the Formation of CO2 and Other Interstellar Ices
- Reaction Networks For Interstellar Chemical Modelling: Improvements and Challenges
- Atom addition reactions in interstellar ice analogues
- Formation of complex organic molecules in hot molecular cores through nondiffusive grain-surface and ice-mantle chemistry
- Water formation at low temperatures by surface O2 hydrogenation II: the reaction network
- Thermal desorption of circumstellar and cometary ice analogs
- Laboratory H2O:CO2 ice desorption data: entrapment dependencies and its parameterization with an extended three-phase model
- Efficient Production of S in Interstellar Ices: The effects of cosmic ray-driven radiation chemistry and non-diffusive bulk reactions
- Binding Energy of Molecules on Water Ice: Laboratory Measurements and Modeling
- CO diffusion into amorphous H2O ices
- Water delivery from cores to disks: deuteration as a probe of the prestellar inheritance of H2O
- Photochemistry of the PAH pyrene in water ice: the case for ion-mediated solid-state astrochemistry
- Porosity measurements of interstellar ice mixtures using optical laser interference and extended effective medium approximations
- Thermophysical evolution of planetesimals in the Primordial Disk
- Interstellar Simulations Using A Unified Microscopic-Macroscopic Monte Carlo Model with a full Gas-Grain Network including Bulk Diffusion in Ice Mantles
- Laboratory and Computational Studies of Interstellar Ices
- Diffusion activation energy and desorption activation energy for astrochemically relevant species on water ice show no clear relation
- The scaling of the vibrational density of states in quasi-2D nanoconfined solids
- Transmission Electron Microscopy Study of the Morphology of Ices Composed of H2O, CO2, and CO on Refractory Grains
- Interactions of adsorbed CO on water ice at low temperatures
- CO Infrared Phonon Modes in Interstellar Ice Mixtures
- Diffusion and Clustering of Carbon Dioxide on non-porous Amorphous Solid Water
- Chemistry in a forming protoplanetary disk: main accretion phase
- Infrared spectra of complex organic molecules in astronomically relevant ice matrices. III. Methyl formate and its tentative solid-state detection
- CO diffusion and desorption kinetics in CO ices
- CO2-rich protoplanetary discs as a probe of dust radial drift & trapping
- The effect of selective desorption mechanisms during interstellar ice formation
- The CO and CO Absorption Bands as Tracers of the Thermal History of Interstellar Icy Grain Mantles
- Characterization of thin film CO ice through the infrared combination mode
- Spectroscopic measurements of CHOH in layered and mixed interstellar ice analogues
- Ices in planet-forming disks: Self-consistent ice opacities in disk models
- A New Method for Simulating Photoprocesses in Astrochemical Models
- Evaporative cooling of icy interstellar grains II. Key parameters
- The Efficiency of Noble Gas Trapping in Astrophysical Environments
- Ices in starless and starforming cores
- Modeling the processing of interstellar ices by energetic particles
- Photochemistry of interstellar ice forming Complex Organic Molecules
- Understanding the impact of diffusion of CO in the astrochemical models
- Ice features of low-luminosity protostars in near-infrared spectra of AKARI/IRC
- H2S ice sublimation dynamics: experimentally constrained binding energies, entrapment efficiencies, and snowlines
- Evaporative cooling of icy interstellar grains. I. Basic characterization
- Laboratory spectroscopy of theoretical ices: Predictions for JWST and test for astrochemical models
- Computational Estimation of the Binding Energies of POx and HPOx (x=2,3) Species
- New measurement of the diffusion of carbon dioxide on non-porous amorphous solid water
- Astrochemistry: Synthesis and Modelling
- CO Diffusion on Interstellar Amorphous Solid Water: A Computational Study
- HCN snowlines in protoplanetary disks: constraints from ice desorption experiments
- Experimental investigation of O2 diffusion and entrapment in interstellar amorphous solid water (ASW)