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      EFFICIENT PRODUCTION OF HIGH-ENERGY NONTHERMAL PARTICLES DURING MAGNETIC RECONNECTION IN A MAGNETICALLY DOMINATED ION–ELECTRON PLASMA

      , , , , , , , ,
      The Astrophysical Journal
      American Astronomical Society

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          Electron acceleration from contracting magnetic islands during reconnection.

          A long-standing problem in the study of space and astrophysical plasmas is to explain the production of energetic electrons as magnetic fields 'reconnect' and release energy. In the Earth's magnetosphere, electron energies reach hundreds of thousands of electron volts (refs 1-3), whereas the typical electron energies associated with large-scale reconnection-driven flows are just a few electron volts. Recent observations further suggest that these energetic particles are produced in the region where the magnetic field reconnects. In solar flares, upwards of 50 per cent of the energy released can appear as energetic electrons. Here we show that electrons gain kinetic energy by reflecting from the ends of the contracting 'magnetic islands' that form as reconnection proceeds. The mechanism is analogous to the increase of energy of a ball reflecting between two converging walls--the ball gains energy with each bounce. The repetitive interaction of electrons with many islands allows large numbers to be efficiently accelerated to high energy. The back pressure of the energetic electrons throttles reconnection so that the electron energy gain is a large fraction of the released magnetic energy. The resultant energy spectra of electrons take the form of power laws with spectral indices that match the magnetospheric observations.
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            Fully kinetic simulations of undriven magnetic reconnection with open boundary conditions

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              THE INTERNAL-COLLISION-INDUCED MAGNETIC RECONNECTION AND TURBULENCE (ICMART) MODEL OF GAMMA-RAY BURSTS

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                Author and article information

                Journal
                The Astrophysical Journal
                ApJ
                American Astronomical Society
                2041-8213
                February 10 2016
                February 03 2016
                : 818
                : 1
                : L9
                Article
                10.3847/2041-8205/818/1/L9
                76a26045-59f1-421c-9705-7c63eebfd3e2
                © 2016

                http://iopscience.iop.org/info/page/text-and-data-mining

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