Model for the overall phase-space acceptance in a Zeeman decelerator
Katrin Dulitz, Nicolas Vanhaecke, Timothy P. Softley

TL;DR
This paper introduces a new formalism for calculating phase-space acceptance in Zeeman decelerators, revealing velocity dependence due to finite pulse rise and fall times, and offering insights for optimizing deceleration schemes.
Contribution
The paper presents a novel model that accounts for finite pulse times and field overlaps, improving understanding and optimization of phase stability in Zeeman deceleration.
Findings
Velocity dependence of phase stability due to pulse timing
Changing switch-off times maintains constant phase stability
Model aligns with numerical simulations and offers optimization insights
Abstract
We present a new formalism to calculate phase-space acceptance in a Zeeman decelerator. Using parameters closely mimicking previous Zeeman deceleration experiments, this approach reveals a hitherto unconsidered velocity dependence of the phase stability which we ascribe to the finite rise and fall times of the current pulses that generate the magnetic fields inside the deceleration coils. It is shown that changing the current switch-off times as the sequence progresses, so as to maintain a constant mean acceleration per pulse, can lead to a constant phase stability and hence a beam with well-defined characteristics. We also find that the time overlap between fields of adjacent coils has an influence on the phase-space acceptance. Previous theoretical and experimental results suggested unfilled regions in phase space that influence particle transmission through the decelerator. Our model…
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