Protostellar Disk Formation Enabled by Removal of Small Dust Grains
arXiv:1602.02729 · doi:10.1093/mnras/stw1124
Abstract
It has been shown that a realistic level of magnetization of dense molecular cloud cores can suppress the formation of a rotationally supported disk (RSD) through catastrophic magnetic braking in the axisymmetric ideal MHD limit. In this study, we present conditions for the formation of RSDs through non-ideal MHD effects computed self-consistently from an equilibrium chemical network. We find that removing from the standard MRN distribution the large population of very small grains (VSGs) of ~10 to few 100 that dominate the coupling of the bulk neutral matter to the magnetic field increases the ambipolar diffusivity by ~1--2 orders of magnitude at densities below 10 cm. The enhanced ambipolar diffusion (AD) in the envelope reduces the amount of magnetic flux dragged by the collapse into the circumstellar disk-forming region. Therefore, magnetic braking is weakened and more angular momentum can be retained. With continuous high angular momentum inflow, RSDs of tens of AU are able to form, survive, and even grow in size, depending on other parameters including cosmic-ray ionization rate, magnetic field strength, and rotation speed. Some disks become self-gravitating and evolve into rings in our 2D (axisymmetric) simulations, which have the potential to fragment into (close) multiple systems in 3D. We conclude that disk formation in magnetized cores is highly sensitive to chemistry, especially to grain sizes. A moderate grain coagulation/growth to remove the large population of VSGs, either in the prestellar phase or during free-fall collapse, can greatly promote AD and help formation of tens of AU RSDs.
26 pages, 26 figures, 2 tables; submitted to MNRAS
References in corpus (14)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Magnetic processes in a collapsing dense core. I Accretion and Ejection
- Magnetic Braking and Protostellar Disk Formation: The Ideal MHD Limit
- Magnetic fields in protoplanetary disks
- Magnetic Fields in Dark Cloud Cores: Arecibo OH Zeeman Observations
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Non-Ideal Magnetohydrodynamic Effects and Early Formation of Circumstellar Disks
- Can non-ideal magnetohydrodynamics solve the magnetic braking catastrophe?
- Effects of Ohmic and ambipolar diffusion on the formation and evolution of the first cores, protostars and circumstellar discs
- Gravitational collapse of magnetized clouds II. The role of Ohmic dissipation
- Three-fluid plasmas in star formation II. Momentum transfer rate coefficients
- Disk Formation Enabled by Enhanced Resistivity
- Three-fluid plasmas in star formation I. Magneto-hydrodynamic equations
- The role of cosmic rays on magnetic field diffusion and the formation of protostellar discs
- The changing X-ray time lag in MCG-6-30-15
Cited by in corpus (100)
- Cosmic-ray ionisation in circumstellar discs
- Characterizing young protostellar disks with the CALYPSO IRAM-PdBI survey: large Class 0 disks are rare
- Signs of Early-Stage Disk Growth Revealed with ALMA
- Gas phase Elemental abundances in Molecular cloudS (GEMS) I. The prototypical dark cloud TMC 1
- Cometary ices in forming protoplanetary disc midplanes
- The role of magnetic fields in the formation of protostellar discs
- HL Tau disk in HCO+ (3-2) and (1-0) with ALMA: gas density, temperature, gap, and one-arm spiral
- What determines the formation and characteristics of protoplanetary discs?
- Formation and Evolution of Disks around Young Stellar Objects
- Gas phase Elemental abundances in Molecular cloudS (GEMS) VII. Sulfur elemental abundance
- The central 1000 AU of a pre-stellar core revealed with ALMA. I. 1.3 mm continuum observations
- Molecular outflow launched beyond the disk edge
- Effect of Grain Size on Differential Desorption of Volatile Species and on Non-ideal MHD Diffusivity
- Zooming in on Individual Star Formation: Low- and High-mass Stars
- Penetration of cosmic rays into dense molecular clouds: role of diffuse envelope
- ALMA resolves the hourglass magnetic field in G31.41+0.31
- The First Two Thousand Years of Star Formation
- Protostellar collapse: the conditions to form dust rich protoplanetary disks
- The Effect of Misalignment between Rotation Axis and Magnetic Field on Circumstellar Disk
- Gas phase Elemental abundances in Molecular cloudS (GEMS). IV. Observational results and statistical trends
- Dust coagulation feedback on magnetohydrodynamic resistivities in protostellar collapse
- Effect of Angular Momentum Alignment and Strong Magnetic Fields on the Formation of Protostellar Disks
- Protostellar collapse simulations in spherical geometry with dust coagulation and fragmentation
- Magnetic field amplification in accretion discs around the first stars: implications for the primordial IMF
- Protoplanetary disk birth in massive star forming clumps: the essential role of the magnetic field
- On the Effects of Self-Obscuration in the (Sub-)Millimeter Spectral Indices and Appearance of Protostellar Disks
- Kinematics around the B335 protostar down to au scales
- Disk Formation in Magnetized Dense Cores with Turbulence and Ambipolar Diffusion
- Small dust grain dynamics on adaptive mesh-refinement grids. I. Methods
- Accretion Flows or Outflow Cavities? Uncovering the Gas Dynamics around Lupus 3-MMS
- The specific angular momentum radial profile in dense cores: improved initial conditions for disk formation
- An Ordered Envelope-disk Transition in the Massive Protostellar Source G339.88-1.26
- Dust opacity variations in the pre-stellar core L1544
- Does misalignment between magnetic field and angular momentum enhance or suppress circumstellar disk formation?
- Rapid Elimination of Small Dust Grains in Molecular Clouds
- The impact of non-ideal magnetohydrodynamic processes on discs, outflows, counter-rotation and magnetic walls during the early stages of star formation
- Ionization: a possible explanation for the difference of mean disk sizes in star-forming regions
- The JCMT BISTRO survey: alignment between outflows and magnetic fields in dense cores/clumps
- Ionization and Dust Charging in Protoplanetary Disks
- Ambipolar diffusion in the Bifrost code
- Early evolution of disk, outflow, and magnetic field of young stellar objects: Impact of dust model
- Probing the physics of star formation (ProPStar): I. First resolved maps of the electron fraction and cosmic-ray ionization rate in NGC 1333
- Revealing the dust grain size in the inner envelope of the Class I protostar Per-emb-50
- Magnetically regulated disk-formation in the inner 100 au region of the Class 0 young stellar object OMC-3/MMS~6 resolved by JVLA and ALMA
- Evidence for disks at an early stage in class 0 protostars?
- Gas-phase Elemental abundances in Molecular cloudS (GEMS) III. Unlocking the CS chemistry: the CS+O reaction
- Fast methods for tracking grain coagulation and ionization. I. Analytic derivation
- Do we need non-ideal magnetohydrodynamics to model protostellar discs?
- Rigorous theory for secondary cosmic-ray ionization
- ALMA reveals the magnetic field evolution in the high-mass star forming complex G9.62+0.19
- Chemical evolution during the formation of a protoplanetary disk
- Co-evolution of dust grains and protoplanetary disks
- Dust Rotational Dynamics in C-shocks: Rotational Disruption of Nanoparticles by Stochastic Mechanical Torques and Spinning Dust Emission
- The Circumstellar Disk and Asymmetric outflow of the EX Lup Outburst System
- FAUST IX. Multi-band, multi-scale dust study of L1527 IRS. Evidence for dust properties variations within the envelope of a Class 0/I YSO
- Dust coagulation and fragmentation in a collapsing cloud core and their influence on non-ideal magnetohydrodynamic effects
- Constraint on ion-neutral drift velocity in the Class 0 protostar B335 from ALMA observations
- Impact of dust size distribution including large dust grains on magnetic resistivity: an analytical approach
- Search for grain growth towards the center of L1544
- JCMT POL-2 and ALMA polarimetric observations of 6000-100 au scales in the protostar B335: linking magnetic field and gas kinematics in observations and MHD simulations
- Transition from ordered pinched to warped magnetic field on a 100 au scale in the Class 0 protostar B335
- Mixing is easy: New insights for cosmochemical evolution from pre-stellar core collapse
- Linking the dust and chemical evolution: Taurus and Perseus -- New collisional rates for HCN, HNC, and their C, N, and H isotopologues
- The challenges of modelling microphysics: ambipolar diffusion, chemistry, and cosmic rays in MHD shocks
- The impact of dust evolution on the dead zone outer edge in magnetized protoplanetary disks
- Implementation of dust particles in three-dimensional magnetohydrodynamics simulation: Dust dynamics in a collapsing cloud core
- FERIA: Flat Envelope Model with Rotation and Infall under Angular Momentum Conservation
- Methanol masers reveal the magnetic field of the high-mass protostar IRAS 18089-1732
- Impact of turbulence intensity and fragmentation velocity on dust particle size evolution and non-ideal magnetohydrodynamics effects
- Increasing mass-to-flux ratio from the dense core to the protostellar envelope around the Class 0 protostar HH 211
- Alignment of dense molecular core morphology and velocity gradients with ambient magnetic fields
- Protostellar disks subject to infall: a one-dimensional inviscid model and comparison with ALMA observations
- First clear detection of the CCS Zeeman splitting toward the pre-stellar core, Taurus Molecular Cloud-1
- Dust evolution during the protostellar collapse: influence on the coupling between the neutral gas and the magnetic field
- FAUST XXVI. The dust opacity spectral indices of protostellar envelopes bridge the gap between interstellar medium and disks
- Magnetic Fields Recorded by Chondrules Formed in Nebular Shocks
- No impact of core-scale magnetic field, turbulence, or velocity gradient on sizes of protostellar disks in Orion A
- Gravitational instability of filamentary molecular clouds, including ambipolar diffusion; Non-isothermal filament
- GMC Collisions As Triggers of Star Formation. IV. The Role of Ambipolar Diffusion
- Charged grains and Kelvin Helmholtz instability in molecular clouds
- On the propagation of Alfvén waves in the dusty interstellar medium. Can we neglect dust inertia in molecular clouds?
- Cosmic-ray ionization rate versus Dust fraction: Which plays a crucial role in the early evolution of the circumstellar disk?
- Magnetic Spirals in Accretion Flows Originated from Misaligned Magnetic Field
- Dynamic role of dust in formation of molecular clouds
- Exclusion of cosmic rays from molecular clouds by self-generated electric fields
- Synthetic Observations of the Infalling Rotating Envelope: Links between the Physical Structure and Observational Features
- Protostellar disk accretion in turbulent filaments
- Dust evolution by chemisputtering during protostellar formation
- Dust rotational dynamics in non-stationary shock: rotational disruption of nanoparticles by stochastic mechanical torques and spinning dust emission
- On the 3D time evolution of the dust size distribution in protostellar envelopes
- Gas phase Elemental abundances in Molecular cloudS (GEMS). IX. Deuterated compounds of H2S in starless cores
- Co-evolution of dust grains and protoplanetary disks II: structure and evolution of protoplanetary disks; an analytical approach
- A new multifluid method for dusty astrophysical flows. Application to turbulent protostellar collapses
- The Rotation Dip in the Envelope-Disk Transition of HH 111: Evidence for Magnetic Braking
- Fire from Ice - Massive Star Birth from Infrared Dark Clouds
- Numerical Methods for Simulating Star Formation
- Magnetic reconnection in partially ionized plasmas
- Effects of magnetic field orientations in dense cores on gas kinematics in protostellar envelopes
- Discs and outflows in the early phases of massive star formation: influence of magnetic fields and ambipolar diffusion
- Magnetic clumping of charged dust in the dense interstellar medium