2,392 research outputs found
TeV neutrinos from microquasars in compact massive binaries
We consider a compact binary system in which a Wolf-Rayet star supplies
matter onto a stellar mass black hole or a neutron star. This matter forms an
accretion disk which ejects a jet as observed in Galactic microquasars. A part
of the jet kinetic energy, typically 10%, can be transfered to relativistic
nuclei. These nuclei lose nucleons as a result of photo-disintegration process
in collisions with thermal photons from the accretion disk and the massive
star. Due to the head on photon-nucleus collisions most of neutrons released
from nuclei move towards the surface of the accretion disk and/or the massive
star producing neutrinos in collisions with the matter. We calculate the
spectra of muon neutrinos and expected neutrino event rates in a 1 km^2
neutrino detector of the IceCube type from a microquasar inside our Galaxy
applying, as an example, the parameters of the Cyg X-3 binary system, provided
that nuclei are accelerated to the Lorentz factors above 10^6 with the power
law spectrum with an index close to 2.Comment: 13 pages, 2 figures, ApJ, accepte
Magnetic-field-induced binding of few-electron systems in shallow quantum dots
Binding of few-electron systems in two-dimensional potential cavities in the
presence of an external magnetic field is studied with the exact
diagonalization approach. We demonstrate that for shallow cavities the
few-electron system becomes bound only under the application of a strong
magnetic field. The critical value of the depth of the cavity allowing the
formation of a bound state decreases with magnetic field in a non-smooth
fashion, due to the increasing angular momentum of the first bound state. In
the high magnetic field limit the binding energies and the critical values for
the depth of the potential cavity allowing the formation of a bound system tend
to the classical values
Gated combo nanodevice for sequential operations on single electron spin
An idea for a nanodevice in which an arbitrary sequence of three basic
quantum single qubit gates - negation, Hadamard and phase shift - can be
performed on a single electron spin. The spin state is manipulated using the
spin-orbit coupling and the electron trajectory is controlled by the electron
wave function self-focusing mechanism due to the electron interaction with the
charge induced on metal gates. We present results of simulations based on
iterative solution of the time dependent Schr\"odinger equation in which the
subsequent operations on the electron spin can be followed and controlled.
Description of the moving electron wave packet requires evaluation of the
electric field within the entire nanodevice in each time step
Magnetic-field asymmetry of electron wave packet transmission in bent channels capacitively coupled to a metal gate
We study the electron wave packet moving through a bent channel. We
demonstrate that the packet transmission probability becomes an uneven function
of the magnetic field when the electron packet is capacitively coupled to a
metal plate. The coupling occurs through a non-linear potential which
translates a different kinetics of the transport for opposite magnetic field
orientations into a different potential felt by the scattered electron
Electron spin and charge switching in a coupled quantum dot quantum ring system
Few-electron systems confined in a quantum dot laterally coupled to a
surrounding quantum ring in the presence of an external magnetic field are
studied by exact diagonalization. The distribution of electrons between the dot
and the ring is influenced by the relative strength of the dot and ring
confinement, the gate voltage and the magnetic field which induces transitions
of electrons between the two parts of the system. These transitions are
accompanied by changes in the periodicity of the Aharonov-Bohm oscillations of
the ground-state angular momentum. The singlet-triplet splitting for a two
electron system with one electron confined in the dot and the other in the ring
exhibits piecewise linear dependence on the external field due to the
Aharonov-Bohm effect for the ring-confined electron, in contrast to smooth
oscillatory dependence of the exchange energy for laterally coupled dots in the
side-by-side geometry.Comment: to appear in PRB in August 200
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