Dust Growth in Evolving Filamentary Molecular Clouds: Signatures in Ionization, Resistivity, and Infrared Scattering
astro-ph.GA, astro-ph.SR
Submitted: 2026-09-19
Updated: 2026-09-19
Comments: Accepted for publication in The Astrophysical Journal
License: http://creativecommons.org/licenses/by/4.0/
The gist: Studies of dust growth in molecular clouds often prescribe the collapse history, leaving unclear how magnetic regulation of core formation shapes dust evolution and its observable and non-ideal MHD
Terminology
Abstract
Studies of dust growth in molecular clouds often prescribe the collapse history, leaving unclear how magnetic regulation of core formation shapes dust evolution and its observable and non-ideal MHD signatures. We address this problem by performing one-zone dust evolution and ionization calculations along time-dependent density and magnetic-field histories extracted from three-dimensional non-ideal MHD simulations of core formation through filament fragmentation. A stronger initial magnetic field delays contraction and thereby gives dust grains more time to grow at a given density. In our models, this delayed contraction leads to mass-weighted mean dust sizes of 1.2,μ m and 3.1,μ m at n H=10 6, cm-3 for B ini=20 and 50,μ G, respectively. The associated depletion of very small dust grains reduces the adsorption of charged particles onto dust grain surfaces and lowers the conductivity: relative to models without dust growth, the ionization fraction increases from about10-9 to about10-8, the ambipolar resistivity increases, and the ion--neutral drift velocity rises to several m,s-1 in the weak-magnetic-field model and approximately 10, m,s-1 in the strong-magnetic-field model. These drift velocities remain below the observationally suggested range of 30 -- 100, m,s-1, indicating that still stronger magnetic fields may be required. The evolved dust populations also attain single-scattering albedos of order ω λ about0.8 at 3.6 -- 4.5,μ m, with the stronger field shifting the onset of efficient infrared scattering toward lower densities. These results demonstrate that the magnetically controlled collapse timescale, rather than density alone, links dust growth to ionization, ambipolar diffusion, and infrared scattering in prestellar cores.
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