• Rapid Communication

Final-state screening of core holes in metals

M. Weinert, J. W. Davenport, and R. E. Watson
Phys. Rev. B 34, 2971(R) – Published 15 August 1986
PDFExport Citation

Abstract

Core-level photoemission is often employed to extract chemical information concerning the atomic site and this requires assumptions concerning the balance between initial-state chemical and final-state screening effects. With this in mind, we have calculated the binding energy of the 4f level in gold metal using local-density total-energy calculations. We find a binding energy of 83.7 eV in good agreement with the experimental value of 83.9 eV. We are thus able to test several less complete computational schemes. For example, confining the response to a single site yields 84.3 eV, an error of 0.6 eV, while limiting the screening to the atom and its near neighbors produces an error of 0.07 eV. In addition, we have calculated the heat of solution of mercury in gold. This may be related via a Born-Haber cycle to the core-level binding energy assuming local screening and the equivalent core approximation. This yields a binding-energy error of 0.15 eV which, while small, is of significance. Finally, we have explicitly decomposed the binding energy into initial- and final-state contributions and find a relaxation energy in gold of 17.7 eV compared to 13.1 eV for the isolated atom.

  • Received 14 May 1986

DOI:https://doi.org/10.1103/PhysRevB.34.2971

©1986 American Physical Society

Authors & Affiliations

M. Weinert, J. W. Davenport, and R. E. Watson

  • Department of Physics, Brookhaven National Laboratory, Upton, New York 11973

References (Subscription Required)

Click to Expand
Issue

Vol. 34, Iss. 4 — 15 August 1986

Reuse & Permissions
Access Options
Author publication services for translation and copyediting assistance advertisement

Authorization Required


×
×

Images

×

Sign up to receive regular email alerts from Physical Review B

Log In

Cancel
×

Search


Article Lookup

Paste a citation or DOI

Enter a citation
×