The calculation of initial-state effects on inner-shell ionization energies

Citation
Kj. Borve et Td. Thomas, The calculation of initial-state effects on inner-shell ionization energies, J ELEC SPEC, 107(2), 2000, pp. 155-161
Citations number
26
Categorie Soggetti
Spectroscopy /Instrumentation/Analytical Sciences
Journal title
JOURNAL OF ELECTRON SPECTROSCOPY AND RELATED PHENOMENA
ISSN journal
03682048 → ACNP
Volume
107
Issue
2
Year of publication
2000
Pages
155 - 161
Database
ISI
SICI code
0368-2048(200005)107:2<155:TCOIEO>2.0.ZU;2-X
Abstract
In order to obtain chemical insight from shifts in core-ionization energies , Delta I, it is often desirable to separate the initial-state contribution , Delta V, from that caused by relaxation in the final state, Delta R. Thes e quantities are related through Delta I = Delta V-Delta R. Whereas the che mical shift itself, Delta I, may be measured very accurately, the scope of the present contribution is to provide a tool for accurate quantification o f the initial-state contribution Delta V to the measured shift. Common proc edures of estimating Delta V either from Hartree-Fock orbital energies or f rom electrostatic potentials at nuclear positions are examined. Whereas orb ital energies suffer from the neglect of valence-electron correlation, the use of electrostatic potentials does not take proper account of the finite extension of core orbitals. In order to circumvent both of these problems, a reformulation valid for any valence-correlated wave function is presented for V, the energy needed to remove a core electron without relaxation of s pectator electrons. The resulting expression may be seen as an extension of Koopmans' theorem, and reduces to the former in the case of a Hartree-Fock wave function. This extended Koopmans' theorem is used to compare initial- state effects in X-ray photoelectron spectra for a set of simple hydrocarbo ns. (C) 2000 Elsevier Science B.V. All rights reserved.