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Magnetogenesis in a collisionless plasma: from Weibel instability to turbulent dynamo

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arxiv 2308.01924 v1 pith:VSEW5POY submitted 2023-07-28 astro-ph.HE astro-ph.COhep-phphysics.plasm-ph

Magnetogenesis in a collisionless plasma: from Weibel instability to turbulent dynamo

classification astro-ph.HE astro-ph.COhep-phphysics.plasm-ph
keywords plasmafieldsmagneticdynamoseedturbulentunmagnetizedamplification
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We report on a first-principles numerical and theoretical study of plasma dynamo in a fully kinetic framework. By applying an external mechanical force to an initially unmagnetized plasma, we develop a self-consistent treatment of the generation of ``seed'' magnetic fields, the formation of turbulence, and the inductive amplification of fields by the fluctuation dynamo. Driven large-scale motions in an unmagnetized, weakly collisional plasma are subject to strong phase mixing, which leads to the development of thermal pressure anisotropy. This anisotropy triggers the Weibel instability, which produces filamentary ``seed'' magnetic fields on plasma-kinetic scales. The plasma is thereby magnetized, enabling efficient stretching and folding of the fields by the plasma motions and the development of Larmor-scale kinetic instabilities such as the firehose and mirror. The scattering of particles off the associated microscale magnetic fluctuations provides an effective viscosity, regulating the field morphology and turbulence. During this process, the seed field is further amplified by the fluctuation dynamo until they reach energy equipartition with the turbulent flow. By demonstrating that equipartition magnetic fields can be generated from an initially unmagnetized plasma through large-scale turbulent flows, this work has important implications for the origin and amplification of magnetic fields in the intracluster and intergalactic mediums.

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