Journal of Physics B Atomic Molecular and Optical Physics · 2012 · 36 citations · 39 references
EngineeringNuclear PhysicsFast Alpha ParticlesElectron DiffractionElectron Cloud EffectsHelium AtomsElectron CaptureElectron PhysicHeavy Ion PhysicElectron SpectroscopyPlasma TheoryLepton-nucleon ScatteringTransition AmplitudeQuantum ScienceHigh-energy Nuclear ReactionPhysicsNuclear TheoryAtomic PhysicsExperimental Nuclear PhysicsNatural SciencesParticle PhysicsApplied PhysicsCoulomb Boundary ConditionsAlpha Particles
A three-body Coulomb–Born continuum distorted-wave approximation is applied to calculate the differential and total cross sections for single-electron exchange in the collision of fast alpha particles with helium atoms in their ground states. The applied first-order distorted wave theory satisfies correct Coulomb boundary conditions. Both post and prior forms of the transition amplitude are calculated. The nuclear-screening effect of the passive electron on the differential and total cross sections is investigated. The results are compared with those of other theories and with the available experimental data. For differential cross sections, the comparisons show a reasonable agreement with empirical measurements at higher impact energies. The agreement between experimental data and the present calculations for total cross sections with the average of the post and prior forms of the transition amplitude is reasonable at all the specified energies.
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Roothaan-Hartree-Fock atomic wavefunctions
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