The magnetron instability in a pulsar's cylindrical electrosphere
Jerome Petri

TL;DR
This paper investigates the magnetron instability in a pulsar's electrosphere, including relativistic and particle inertia effects, revealing conditions under which the instability is enhanced or suppressed, and providing numerical spectra for various configurations.
Contribution
It extends previous studies by incorporating particle inertia and relativistic effects into the analysis of the magnetron instability in pulsar electrospheres, offering a more comprehensive understanding.
Findings
Self-electric field can increase instability growth rate.
Equilibrium solutions exist only below a certain electric field threshold.
Instability can be suppressed near this threshold, especially in relativistic regimes.
Abstract
(abridged) The physics of the pulsar magnetosphere remains poorly constrained by observations. Little is known about their emission mechanism. Large vacuum gaps probably exist, and a non-neutral plasma partially fills the neutron star surroundings to form an electrosphere. We showed that the differentially rotating equatorial disk in the pulsar's electrosphere is diocotron unstable and that it tends to stabilise when relativistic effects are included. However, when approaching the light cylinder, particle inertia becomes significant and the electric drift approximation is violated. In this paper, we study the most general instability, i.e. by including particle inertia effects, as well as relativistic motions. This general non-neutral plasma instability is called the magnetron instability. We linearise the coupled relativistic cold-fluid and Maxwell equations. The non-linear eigenvalue…
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