# Magnetic fields in protoplanetary disks

**Authors:** Mark Wardle (Macquarie University)

arXiv: 0704.0970 · 2009-06-23

## TL;DR

This paper investigates how magnetic fields interact with protoplanetary disks, focusing on ionisation, dust grain effects, and magnetic diffusivity, revealing how grain growth influences magnetic coupling at different radii.

## Contribution

It provides detailed calculations of ionisation equilibrium and magnetic diffusivity in protoplanetary disks, highlighting the impact of dust grain size on magnetic coupling at various radii.

## Key findings

- Grain growth reduces magnetic suppression, enabling coupling at the midplane.
- Active surface layers depend on grain size and radius, affecting magnetic activity.
- X-ray ionisation maintains magnetic coupling in the absence of grains.

## Abstract

Magnetic fields likely play a key role in the dynamics and evolution of protoplanetary discs. They have the potential to efficiently transport angular momentum by MHD turbulence or via the magnetocentrifugal acceleration of outflows from the disk surface, and magnetically-driven mixing has implications for disk chemistry and evolution of the grain population. However, the weak ionisation of protoplanetary discs means that magnetic fields may not be able to effectively couple to the matter. I present calculations of the ionisation equilibrium and magnetic diffusivity as a function of height from the disk midplane at radii of 1 and 5 AU. Dust grains tend to suppress magnetic coupling by soaking up electrons and ions from the gas phase and reducing the conductivity of the gas by many orders of magnitude. However, once grains have grown to a few microns in size their effect starts to wane and magnetic fields can begin to couple to the gas even at the disk midplane. Because ions are generally decoupled from the magnetic field by neutral collisions while electrons are not, the Hall effect tends to dominate the diffusion of the magnetic field when it is able to partially couple to the gas.   For a standard population of 0.1 micron grains the active surface layers have a combined column of about 2 g/cm^2 at 1 AU; by the time grains have aggregated to 3 microns the active surface density is 80 g/cm^2. In the absence of grains, x-rays maintain magnetic coupling to 10% of the disk material at 1 AU (150 g/cm^2). At 5 AU the entire disk thickness becomes active once grains have aggregated to 1 micron in size.

## Full text

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## Figures

11 figures with captions in the complete paper: https://tomesphere.com/paper/0704.0970/full.md

## References

46 references — full list in the complete paper: https://tomesphere.com/paper/0704.0970/full.md

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Source: https://tomesphere.com/paper/0704.0970