A theoretical study of spin filtering and its application to polarizing antiprotons
D.S. O'Brien

TL;DR
This paper provides a comprehensive theoretical analysis of spin filtering for polarizing antiprotons, deriving electromagnetic cross-sections, and proposing methods including using polarized electron beams for effective polarization buildup.
Contribution
It offers the first detailed theoretical framework for spin filtering in antiprotons, including electromagnetic effects, spin transfer, depolarization, and potential polarization methods with lepton targets.
Findings
Electromagnetic effects dominate at small scattering angles.
Derived spin-dependent cross-sections for various scattering processes.
Proposed using polarized electron beams to polarize antiprotons.
Abstract
There has been much recent research into possible methods of polarizing an antiproton beam, the most promising being spin filtering, the theoretical understanding of which is currently incomplete. The method of polarization buildup by spin filtering requires many of the beam particles to remain within the beam after repeated interaction with an internal target in a storage ring. Hence small scattering angles, where we show that electromagnetic effects dominate hadronic effects, are important. All spin-averaged and spin-dependent electromagnetic cross-sections and spin observables for elastic spin 1/2 - spin 1/2 scattering, for both point-like particles and non-point-like particles with internal structure defined by electromagnetic form factors, are derived to first order in QED. Particular attention is paid to spin transfer and depolarization cross-sections in antiproton-proton,…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Atomic and Subatomic Physics Research · Atomic and Molecular Physics
