Background
Type: Article

Projectile angular-differential cross sections for single electron transfer in fast He+-He collisions

Journal: Chinese Physics B (16741056)Year: 1 March 2015Volume: 24Issue:
Ghanbari E.a Ghavaminia H.
DOI:10.1088/1674-1056/24/3/033401Language: English

Abstract

The four-body Coulomb-Born distorted wave approximation is applied to investigate the integral as well as projectile angular-differential cross sections for single-electron capture in the collision of energetic singly positive charged helium ions with helium atoms in their ground states. The formalism satisfies the correct boundary conditions. The influence of the dynamic electron correlations on the cross sections is studied by considering the inter electronic interactions in the complete perturbation potentials in post form. Also, the sensitivity of the cross sections to the static electronic correlations is studied by using the single-zeta and the highly correlated Byron-Joachain wave functions to describe the initial bound state of the active electrons. The obtained results for the energy range of 40-5000 keV/amu are reported and compared with other three- and four-body theoretical data and available experimental measurements. The comparison leads us to discuss the validity of the applied approach and survey the interaction effects on the cross sections by recognizing the electron-electron interaction. Particularly, for differential cross sections, the comparison of the present four-body method with the experiment shows that the agreement is not as good as that for its three-body version. © 2015 Chinese Physical Society and IOP Publishing Ltd.


Author Keywords

Coulomb boundary conditionsCoulomb-Born distorted-wave approximationdifferential and total cross sectionsfour-body approximation

Other Keywords

Boundary conditionsDistortion (waves)Electron transport propertiesElectron-electron interactionsGround stateHeliumProjectilesWave functionsDifferential cross sectionDistorted wave approximationsElectronic interactionsfour-body approximationPerturbation potentialSingle electron captureSingle electron transferTotal cross sectionElectrons