FULL-POTENTIAL EMBEDDING FOR SURFACES AND INTERFACES

被引:35
|
作者
CRAMPIN, S
VANHOOF, JBAN
NEKOVEE, M
INGLESFIELD, JE
机构
[1] Inst. fur Theor. Phys., Catholic Univ. of Nijmegen
关键词
D O I
10.1088/0953-8984/4/6/012
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
We extend the surface-embedded Green function technique for calculating the electronic structure of surfaces and interfaces by presenting a method for determining substrate embedding potentials which makes no approximations to the substrate potential. We first present an alternative derivation of the surface-embedded Green function method, to clarify the use of a planar surface in simulating embedding on a more complicated surface, and illustrate this with rigorous tests. Considering the case of a region embedded on two surfaces, we determine the conditions under which the resulting Green function may itself be used as a substrate-embedding potential, and thereby derive a procedure for obtaining an embedding potential which makes no approximation to the substrate potential. In the case of a substrate with semi-infinite periodicity this reduces to a self-consistency relation, for which we describe a first-order iterative solution. Finally, a particularly efficient scheme for obtaining local properties within a surface or interface region is outlined. This constitutes a full-potential solution to the one-electron Schrodinger equation for systems of two-dimensional periodicity, whose calculation time scales linearly with the number of atomic planes.
引用
收藏
页码:1475 / 1488
页数:14
相关论文
共 50 条
  • [31] SUBSONIC TRANSONIC CASCADE FLUTTER USING A FULL-POTENTIAL SOLVER
    BAKHLE, MA
    REDDY, TSR
    KEITH, TG
    AIAA JOURNAL, 1993, 31 (07) : 1347 - 1349
  • [32] ANALYSIS OF ARTIFICIAL DISSIPATION MODELS FOR THE TRANSONIC FULL-POTENTIAL EQUATION
    DULIKRAVICH, GS
    AIAA JOURNAL, 1988, 26 (10) : 1238 - 1245
  • [33] FULL-POTENTIAL LINEAR MUFFIN-TIN-ORBITAL METHOD
    WEYRICH, KH
    PHYSICAL REVIEW B, 1988, 37 (17): : 10269 - 10282
  • [34] A discontinuous Galerkin scheme for full-potential electronic structure calculations
    Li, Xiaoxu
    Chen, Huajie
    JOURNAL OF COMPUTATIONAL PHYSICS, 2019, 385 : 33 - 50
  • [35] Improvements and Extensions to a Full-Potential Formulation Based on Independent Fields
    Parrinello, A.
    Mantegazza, P.
    AIAA JOURNAL, 2012, 50 (03) : 571 - 580
  • [36] Full-potential multiple scattering for x-ray spectroscopies
    Hatada, Keisuke
    Hayakawa, Kuniko
    Benfatto, Maurizio
    Natoli, Calogero R.
    PHYSICAL REVIEW B, 2007, 76 (06):
  • [37] FAST, CONSERVATIVE ALGORITHM FOR SOLVING THE TRANSONIC FULL-POTENTIAL EQUATION
    HOLST, TL
    AIAA JOURNAL, 1980, 18 (12) : 1431 - 1439
  • [38] Total-energy calculations with the full-potential KKR method
    Zeller, R
    Asato, M
    Hoshino, T
    Zabloudil, J
    Weinberger, P
    Dederichs, PH
    PHILOSOPHICAL MAGAZINE B-PHYSICS OF CONDENSED MATTER STATISTICAL MECHANICS ELECTRONIC OPTICAL AND MAGNETIC PROPERTIES, 1998, 78 (5-6): : 417 - 422
  • [39] Full-potential KKR calculations for MgO and divalent impurities in MgO
    Baranov, AN
    Stepanyuk, VS
    Hergert, W
    Katsnelson, AA
    Settels, A
    Zeller, R
    Dederichs, PH
    PHYSICAL REVIEW B, 2002, 66 (15): : 1 - 4
  • [40] TRANSONIC SOLUTIONS FOR A MULTIELEMENT AIRFOIL USING THE FULL-POTENTIAL EQUATIONS
    FLORES, J
    HOLST, TL
    SORENSON, RL
    JOURNAL OF AIRCRAFT, 1985, 22 (01): : 50 - 56