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All-electron local-density theory of the rippled NiAl(110) surface

J. I. Lee, C. L. Fu, and A. J. Freeman
Phys. Rev. B 36, 9318(R) – Published 15 December 1987
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Abstract

The structural and electronic properties of the rippled NiAl(110) surface are investigated using the all-electron total-energy local-density full-potential linearized augmented-plane-wave method. Surface states are found to have ≃1.3-eV binding energies at Γ¯ in excellent agreement with the Auger spectra data. The geometry of the rippled surface and the optical-phonon frequency at Γ¯ are determined by means of frozen phonon calculations. In good agreement with recent experiments, we find the rippling to be 0.20 Å for the composite Ni-Al surface layer with Al displaced outwards relative to the contracted Ni layer. A possible mechanism behind the surface rippling is discussed in terms of charge-transfer effects and electrostatic neutrality. The charge densities and calculated work functions for the relaxed and unrelaxed surfaces are also reported and discussed in relation to this mechanism.

  • Received 17 June 1987

DOI:https://doi.org/10.1103/PhysRevB.36.9318

©1987 American Physical Society

Authors & Affiliations

J. I. Lee*, C. L. Fu, and A. J. Freeman

  • Department of Physics and Astronomy, Northwestern University, Evanston, Illinois 60201

  • *Permanent address: Department of Physics, Inha University, Inchon, Korea.

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Issue

Vol. 36, Iss. 17 — 15 December 1987

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