Hall diffusion and the magnetorotational instability in protoplanetary discs
Mark Wardle (Macquarie), Raquel Salmeron (ANU)

TL;DR
This paper investigates how Hall diffusion influences the magnetorotational instability in protoplanetary discs, revealing its significant impact on the extent of active turbulent regions and challenging previous estimates.
Contribution
It provides a detailed local stability analysis of Hall diffusion effects on MRI, including analytic expressions and implications for dead zone sizes in protoplanetary discs.
Findings
Hall diffusion can alter the MRI-active column density by over an order of magnitude.
The magnetic field's orientation relative to rotation critically affects MRI activity.
Existing models of active layer depths in discs are likely inaccurate due to neglecting Hall effects.
Abstract
The destabilising effect of Hall diffusion in a Keplerian disc allows the MRI to occur for much lower ionisation levels than would otherwise be possible. However, simulations suggest that the consequences for the saturated state are not as significant as suggested by the linear instability. Close inspection reveals that that the simulations have not yet probed the Hall-dominated regime. Here we revisit the effect of Hall diffusion on the MRI and the implications for the extent of MHD turbulence in protoplanetary discs. We conduct a local stability analysis for a vertical, weak magnetic field subject to axisymmetric perturbations with a vertical wave vector. The diffusivity dependence is presented using analytic expressions and contours in the eta_H - eta_P plane for the maximum growth rate and corresponding wave number, the upper cut-off for unstable wave numbers, and the loci that…
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