Optical-model potential for electron and positron elastic scattering by atoms

Francesc Salvat
Phys. Rev. A 68, 012708 – Published 14 July 2003
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Abstract

An optical-model potential for systematic calculations of elastic scattering of electrons and positrons by atoms and positive ions is proposed. The electrostatic interaction is determined from the Dirac-Hartree-Fock self-consistent atomic electron density. In the case of electron projectiles, the exchange interaction is described by means of the local-approximation of Furness and McCarthy. The correlation-polarization potential is obtained by combining the correlation potential derived from the local density approximation with a long-range polarization interaction, which is represented by means of a Buckingham potential with an empirical energy-dependent cutoff parameter. The absorption potential is obtained from the local-density approximation, using the Born-Ochkur approximation and the Lindhard dielectric function to describe the binary collisions with a free-electron gas. The strength of the absorption potential is adjusted by means of an empirical parameter, which has been determined by fitting available absolute elastic differential cross-section data for noble gases and mercury. The Dirac partial-wave analysis with this optical-model potential provides a realistic description of elastic scattering of electrons and positrons with energies in the range from 100eV up to 5keV. At higher energies, correlation-polarization and absorption corrections are small and the usual static-exchange approximation is sufficiently accurate for most practical purposes.

  • Received 30 March 2003

DOI:https://doi.org/10.1103/PhysRevA.68.012708

©2003 American Physical Society

Authors & Affiliations

Francesc Salvat*

  • Facultat de Física (ECM), Universitat de Barcelona, Societat Catalana de Física (IEC), Diagonal 647, 08028 Barcelona, Spain

  • *Electronic address: cesc@ecm.ub.es

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Vol. 68, Iss. 1 — July 2003

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