The initial magnetic criticality of prestellar cores
arXiv:2207.12441 · doi:10.1093/mnras/stac2107
Abstract
Direct observational measurements of the magnetic field strength in prestellar cores typically find supercritical mass-to-flux ratios, suggesting that the magnetic field is insufficient to prevent gravitational collapse. These measurements suffer from significant uncertainties; an alternative approach is to utilise the sensitivity of prestellar chemistry to the evolutionary history, and indirectly constrain the degree of magnetic support. We combine non-ideal magnetohydrodynamic simulations of prestellar cores with time-dependent chemistry and radiative transfer modelling, producing synthetic observations of the model cores in several commonly-observed molecular lines. We find that molecules strongly affected by freeze-out, such as CS and HCN, typically have much lower line intensities in magnetically subcritical models compared to supercritical ones, due to the longer collapse timescales. Subcritical models also produce much narrower lines for all species investigated. Accounting for a range of core properties, ages and viewing angles, we find that supercritical models are unable to reproduce the distribution of CS and NH line strengths and widths seen in an observational sample, whereas subcritical models are in good agreement with the available data. This suggests that despite presently having supercritical mass-to-flux ratios, prestellar cores form as magnetically subcritical objects.
10 pages, 10 figures. MNRAS accepted
References in corpus (32)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- A Unified Representation of Gas-Phase Element Depletions in the Interstellar Medium
- The anatomy of the Orion B Giant Molecular Cloud: A local template for studies of nearby galaxies
- Depletion and low gas temperature in the L183 prestellar core : the N2H+ - N2D+ tool
- UCLCHEM: A Gas-Grain Chemical Code
- Molecular Line Emission as a Tool for Galaxy Observations (LEGO). I. HCN as a tracer of moderate gas densities in molecular clouds and galaxies
- The dynamics of collapsing cores and star formation
- Chemical modelling of complex organic molecules with peptide-like bonds in star-forming regions
- Gas phase Elemental abundances in Molecular cloudS (GEMS). II. On the quest for the sulphur reservoir in molecular clouds: the case
- The Central 1000 au of a Pre-stellar Core Revealed with ALMA. II. Almost Complete Freeze-out
- SCUBA polarisation observations of the magnetic fields in the prestellar cores L1498 and L1517B
- LEGO II: A 3 mm molecular line study covering 100 pc of one of the most actively star-forming portions within the Milky Way Disc
- Magnetic fields in star formation: a complete compilation of all the DCF estimations
- An ALMA study of hub-filament systems I. On the clump mass concentration within the most massive cores
- An Early Transition to Magnetic Supercriticality in Star Formation
- NICIL: A stand alone library to self-consistently calculate non-ideal magnetohydrodynamic coefficients in molecular cloud cores
- Detection of Complex Organic Molecules in Young Starless Core L1521E
- Non-ideal magnetohydrodynamics vs turbulence I: Which is the dominant process in protostellar disc formation?
- A Survey of CH2DOH Towards Starless and Prestellar Cores in the Taurus Molecular Cloud
- Sulfur Chemistry in L1157-B1
- The accretion history of high-mass stars: An ArTéMiS pilot study of Infrared Dark Clouds
- Evolutionary view through the starless cores in Taurus: deuteration in TMC 1-C and TMC 1-CP
- Gas-phase Elemental abundances in Molecular cloudS (GEMS) III. Unlocking the CS chemistry: the CS+O reaction
- Non-ideal magnetohydrodynamics vs turbulence II: Which is the dominant process in stellar core formation?
- GASTON: Galactic Star Formation with NIKA2. Evidence for the mass growth of star-forming clumps
- The JCMT BISTRO Survey: An 850/450m Polarization Study of NGC 2071IR in OrionB
- On the origin of magnetic fields in stars II: The effect of numerical resolution
- Different Modes of Star Formation: Gravitational Collapse of Magnetically Subcritical Cloud
- Non-ideal MHD simulations of subcritical prestellar cores with non-equilibrium chemistry
- Investigating the role of magnetic fields in star formation using molecular line profiles
- Ambipolar diffusion and the molecular abundances in prestellar cores
- History-independent tracers: Forgetful molecular probes of the physical conditions of the dense interstellar medium