Abstract
Abstract
At the KATRIN experiment, the electron antineutrino mass is
inferred from the shape of the β-decay spectrum of
tritium. Important systematic effects in the Windowless Gaseous
Tritium Source (WGTS) of the experiment include the energy loss by
electron scattering, and the extended starting potential. In the
WGTS, primary high-energy electrons from β-decay produce an
extended secondary spectrum of electrons through various atomic and
molecular processes including ionization, recombination, cluster
formation and scattering. In addition to providing data essential to
the simulation of energy loss processes, the electron spectrum also
provides information important in the simulation of plasma
processes. These simulations will then provide an insight on the
starting potential.
Here, a Monte Carlo approach is used to model the electron spectrum
in the source for a given magnetic and electric field
configuration. The spectrum is evaluated at different positions
within the WGTS, which allows for a direct analysis of the spectrum
close to the rear wall and detector end of the experiment. Alongside
electrons, also ions are tracked by the simulation, resulting in a
full description of the currents in the source.
Subject
Mathematical Physics,Instrumentation
Cited by
1 articles.
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