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Phys. Rev. A 55, 2075–2082 (1997)

Velocity dependence of the K Auger deexcitation of O7+ projectiles impinging on solid Cu(111) at 51 and 102 keV

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A. Saal, L. Aberle, R. Page, J. Thomaschewski, and J. Bleck-Neuhaus
Department of Physics, University of Bremen, P.O. Box 330440, D-28334 Bremen, Germany

M. Grether and A. Spieler
Hahn-Meitner-Institute GmbH, 14109 Berlin, Germany

Received 19 June 1996; published in the issue dated March 1997

The time evolution of deexcitation of O7+ ions penetrating the (111) surface of Cu is studied by means of secondary electron spectroscopy. It is found that the filling of the K shell proceeds faster at 102 keV than at 51-keV ion energy, by about 10%. This velocity dependence is determined from a comparison of emission depth profiles, assuming straight-line trajectories for the ions. No further model is needed for the ion deexcitation or the solid-state interactions of the emerging Auger electrons. The model independence is based on three steps: (i) the emission depth profiles for different ion energies and angles are evaluated only in conditions where they are practically equal; (ii) the full K Auger electron spectra with their inelastic parts are obtained using matching pairs of measurements with O6+ projectiles; and (iii) the observation angles are adjusted to equalize, for both ion energies, the laboratory energies of the Auger electrons at emission as well as their solid-state interactions on their way to the surface. The present method can provide benchmark values for multistep cascade models of highly charged ion deexcitation in solids.

© 1997 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.55.2075
DOI:
10.1103/PhysRevA.55.2075
PACS:
34.50.Dy, 79.20.Rf