Linear system-size scaling methods for electronic-structure calculations

Pablo Ordejón, David A. Drabold, Richard M. Martin, and Matthew P. Grumbach
Phys. Rev. B 51, 1456 – Published 15 January 1995
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Abstract

We describe a method for performing electronic-structure calculations of the total energy and interatomic forces which scales linearly with system size. An energy functional is introduced which possesses a global minimum for which (1) electronic wave functions are orthonormal and (2) the correct electronic ground-state energy is obtained. Linear scaling is then obtained by introducing a spatially truncated Wannier-like representation for the electronic states. The effects of this representation are studied in detail. Molecular-dynamics simulations using an orthogonal tight-binding basis and ab initio local-orbital density-functional methods are presented. We study both Car-Parrinello and conjugate-gradient molecular-dynamics schemes and discuss practical methods for dynamical simulation. A detailed connection between our method and the density matrix approach of Daw [Phys. Rev. B 47, 10 895 (1993)] and Li, Nunes, and Vanderbilt, [Phys. Rev. B 47, 10 891 (1993)] is also provided.

  • Received 18 May 1994

DOI:https://doi.org/10.1103/PhysRevB.51.1456

©1995 American Physical Society

Authors & Affiliations

Pablo Ordejón

  • Department of Physics and Materials Research Laboratory, University of Illinois, Urbana, Illinois 61801

David A. Drabold

  • Department of Physics and Astronomy, Ohio University, Athens, Ohio 45701-2979

Richard M. Martin

  • Department of Physics and Materials Research Laboratory, University of Illinois, Urbana, Illinois 61801

Matthew P. Grumbach

  • Department of Physics, Arizona State University, Tempe, Arizona 85287

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Vol. 51, Iss. 3 — 15 January 1995

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