Scinovex
articleTop 10% cited

Penetration and energy-loss theory of electrons in solid targets

Journal of Physics D Applied Physics · 1972 · Vol. 5(1) · pp. 43–58

Abstract

Starting from a simple atomic model giving the potential between electrons and atoms as V ( r ) = Ze 2 a s −1 / sr s with the empirical value s =fraction six-fifths, we combine the diffusion effect due to multiple collisions and the energy retardation in accordance with a modified Thomson-Whiddington law, with the scattering cross section in the Lenard absorption law. On this basis, consistent expressions are obtained for the fraction of transmitted electrons in amorphous solid targets, the backscattering fraction with depth, the fraction of electrons absorbed per unit mass-thickness and the depth-dose function, which are in good agreement with experiments over the energy range 10-1000 keV. A diffusion model represented by a sphere whose centre is located at the maximum energy dissipation depth, related to the diffusion depth and the range, is found to agree well with experiments.

Electron and X-Ray Spectroscopy TechniquesX-ray Spectroscopy and Fluorescence AnalysisIon-surface interactions and analysisElectronAtomic physicsDiffusionPenetration depthScatteringRange (aeronautics)DissipationAbsorption (acoustics)PhysicsMaterials science
Citations
1,404
FWCI
3.18
field-weighted impact
References
31
Percentile
91%
vs. same field & year
Citations per year
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Penetration and energy-loss theory of electrons in solid targets · Scinovex