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Accurate sticking coefficient calculation for carbonaceous dust growth through accretion and desorption in astrophysical environments

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arxiv 2411.06125 v1 pith:TZ2M6NYA submitted 2024-11-09 astro-ph.GA

Accurate sticking coefficient calculation for carbonaceous dust growth through accretion and desorption in astrophysical environments

classification astro-ph.GA
keywords dustgrowthstickingaccretioncarbonaceouscoefficientsastrophysicalbinding
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Context. Cosmic dust is ubiquitous in astrophysical environments, where it significantly influences the chemistry and the spectra. Dust grains are likely to grow through the accretion of atoms and molecules from the gas-phase onto them. Despite their importance, only a few studies compute sticking coefficients for relevant temperatures and species, and their direct impact on grain growth. Overall, the formation of dust and its growth are processes not well understood. Aims. To calculate sticking coefficients, binding energies, and grain growth rates over a wide range of temperatures, for various gas species interacting with carbonaceous dust grains. Methods. We perform molecular dynamics simulations with a reactive force field algorithm to compute accurate sticking coefficients and obtain binding energies. The results are included in an astrophysical model of nucleation regions to study dust growth. Results. We present, for the first time, sticking coefficients of H, H2, C, O, and CO on amorphous carbon structures for temperatures ranging from 50 K to 2250 K. In addition, we estimate the binding energies of H, C, and O in carbonaceous dust to calculate the thermal desorption rates. Combining accretion and desorption allows us to determine an effective accretion rate and sublimation temperature for carbonaceous dust. Conclusions. We find that sticking coefficients can differ substantially from what is commonly used in astrophysical models and this gives new insight on carbonaceous dust grain growth via accretion in dust-forming regions.

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  1. Efficient Interstellar Grain Growth from High Sticking Coefficients on Amorphous Carbon Dust

    astro-ph.GA 2026-07 conditional novelty 6.0

    ReaxFF molecular dynamics and supporting lab measurements show interstellar dust grains can accrete gas-phase metals with sticking coefficients above 0.2, growing significantly within 100 Myr.