2,845 research outputs found
Two-dimensional simulations of nonlinear beam-plasma interaction in isotropic and magnetized plasmas
Nonlinear interaction of a low density electron beam with a uniform plasma is
studied using two-dimensional particle-in-cell (PIC) simulations. We focus on
formation of coherent phase space structures in the case, when a wide
two-dimensional wave spectrum is driven unstable, and we also study how
nonlinear evolution of these structures is affected by the external magnetic
field. In the case of isotropic plasma, nonlinear buildup of filamentation
modes due to the combined effects of two-stream and oblique instabilities is
found to exist and growth mechanisms of secondary instabilities destroying the
BGK--type nonlinear wave are identified. In the weak magnetic field, the energy
of beam-excited plasma waves at the nonlinear stage of beam-plasma interaction
goes predominantly to the short-wavelength upper-hybrid waves propagating
parallel to the magnetic field, whereas in the strong magnetic field the
spectral energy is transferred to the electrostatic whistlers with oblique
propagation
Electron cyclotron resonance near the axis of the gas-dynamic trap
Propagation of an extraordinary electromagnetic wave in the vicinity of
electron cyclotron resonance surface in an open linear trap is studied
analytically, taking into account inhomogeneity of the magnetic field in
paraxial approximation. Ray trajectories are derived from a reduced dispersion
equation that makes it possible to avoid the difficulty associated with a
transition from large propagation angles to the case of strictly longitudinal
propagation. Our approach is based on the theory, originally developed by the
Zvonkov and Timofeev [1], who used the paraxial approximation for the magnetic
field strength, but did not consider the slope of the magnetic field lines,
which led to considerable error, as has been recently noted by Gospodchikov and
Smolyakova [2]. We have found ray trajectories in analytic form and
demonstrated that the inhomogeneity of both the magnetic field strength and the
field direction can qualitatively change the picture of wave propagation and
significantly affect the efficiency of electron cyclotron heating of a plasma
in a linear magnetic trap. Analysis of the ray trajectories has revealed a
criterion for the resonance point on the axis of the trap to be an attractor
for the ray trajectories. It is also shown that a family of ray trajectories
can still reach the resonance point on the axis if the latter generally repels
the ray trajectories.
As an example, results of general theory are applied to the electron
cyclotron resonance heating experiment which is under preparation on the Gas
Dynamic Trap in the Budker Institute of Nuclear Physics [3]
Super-long life time for 2D cyclotron spin-flip excitons
An experimental technique for the indirect manipulation and detection of
electron spins entangled in two-dimensional magnetoexcitons has been developed.
The kinetics of the spin relaxation has been investigated. Photoexcited
spin-magnetoexcitons were found to exhibit extremely slow relaxation in
specific quantum Hall systems, fabricated in high mobility GaAs/AlGaAs
structures, namely, the relaxation time reaches values over one hundred
microseconds. A qualitative explanation of this spin-relaxation kinetics is
presented. Its temperature and magnetic field dependencies are discussed within
the available theoretical framework.Comment: 5 pages, 3 figure
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