With perfect vertex tagging assumed, a 10 bar xenon gas TPC with 4 mm voxels can reconstruct the average opening angle and leading-electron energy of 10 neutrinoless double beta decay events to 0.19 and 110 keV precision.
The Dynamics of Ions on Phased Radio-frequency Carpets in High Pressure Gases and Application for Barium Tagging in Xenon Gas Time Projection Chambers
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abstract
Radio-frequency (RF) carpets with ultra-fine pitches are examined for ion transport in gases at atmospheric pressures and above. We develop new analytic and computational methods for modeling RF ion transport at densities where dynamics are strongly influenced by buffer gas collisions. An analytic description of levitating and sweeping forces from phased arrays is obtained, then thermodynamic and kinetic principles are used to calculate ion loss rates in the presence of collisions. This methodology is validated against detailed microscopic SIMION simulations. We then explore a parameter space of special interest for neutrinoless double beta decay experiments: transport of barium ions in xenon at pressures from 1 to 10 bar. Our computations account for molecular ion formation and pressure dependent mobility as well as finite temperature effects. We discuss the challenges associated with achieving suitable operating conditions, which lie beyond the capabilities of existing devices, using presently available or near-future manufacturing techniques.
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Reconstructing neutrinoless double beta decay event kinematics in a xenon gas detector with vertex tagging
With perfect vertex tagging assumed, a 10 bar xenon gas TPC with 4 mm voxels can reconstruct the average opening angle and leading-electron energy of 10 neutrinoless double beta decay events to 0.19 and 110 keV precision.