Orbital-free density functional theory implementation with the projector augmented-wave method

被引:87
作者
Lehtomaki, Jouko [1 ]
Makkonen, Ilja [1 ]
Caro, Miguel A. [1 ,2 ]
Harju, Ari [1 ]
Lopez-Acevedo, Olga [1 ]
机构
[1] Aalto Univ, Dept Appl Phys, COMP Ctr Excellence, Aalto 00076, Finland
[2] Aalto Univ, Dept Elect Engn & Automat, Espoo, Finland
基金
芬兰科学院;
关键词
ENERGY; EXCHANGE;
D O I
10.1063/1.4903450
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We present a computational scheme for orbital-free density functional theory (OFDFT) that simultaneously provides access to all-electron values and preserves the OFDFT linear scaling as a function of the system size. Using the projector augmented-wave method (PAW) in combination with real-space methods, we overcome some obstacles faced by other available implementation schemes. Specifically, the advantages of using the PAW method are twofold. First, PAW reproduces all-electron values offering freedom in adjusting the convergence parameters and the atomic setups allow tuning the numerical accuracy per element. Second, PAW can provide a solution to some of the convergence problems exhibited in other OFDFT implementations based on Kohn-Sham (KS) codes. Using PAW and real-space methods, our orbital-free results agree with the reference all-electron values with a mean absolute error of 10 meV and the number of iterations required by the self-consistent cycle is comparable to the KS method. The comparison of all-electron and pseudopotential bulk modulus and lattice constant reveal an enormous difference, demonstrating that in order to assess the performance of OFDFT functionals it is necessary to use implementations that obtain all-electron values. The proposed combination of methods is the most promising route currently available. We finally show that a parametrized kinetic energy functional can give lattice constants and bulk moduli comparable in accuracy to those obtained by the KS PBE method, exemplified with the case of diamond. (C) 2014 Author(s).
引用
收藏
页数:7
相关论文
共 25 条
  • [1] [Anonymous], 1989, INT SERIES MONOGRAPH
  • [2] An object-oriented scripting interface to a legacy electronic structure code
    Bahn, SR
    Jacobsen, KW
    [J]. COMPUTING IN SCIENCE & ENGINEERING, 2002, 4 (03) : 56 - 66
  • [3] PROJECTOR AUGMENTED-WAVE METHOD
    BLOCHL, PE
    [J]. PHYSICAL REVIEW B, 1994, 50 (24): : 17953 - 17979
  • [4] Thomas-Fermi-Dirac-von Weizsacker models in finite systems
    Chan, GKL
    Cohen, AJ
    Handy, NC
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2001, 114 (02) : 631 - 638
  • [5] Dirac PAM, 1930, P CAMB PHILOS SOC, V26, P376
  • [6] Fermi E., 1927, REND ACCAD NAZ LINCE, V6, P602
  • [7] Describing metal surfaces and nanostructures with orbital-free density functional theory
    Ho, Gregory S.
    Huang, Chen
    Carter, Emily A.
    [J]. CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2007, 11 (5-6) : 57 - 61
  • [8] INHOMOGENEOUS ELECTRON-GAS
    RAJAGOPAL, AK
    CALLAWAY, J
    [J]. PHYSICAL REVIEW B, 1973, 7 (05) : 1912 - 1919
  • [9] Born-Oppenheimer interatomic forces from simple, local kinetic energy density functionals
    Karasiev, V. V.
    Trickey, S. B.
    Harris, Frank E.
    [J]. JOURNAL OF COMPUTER-AIDED MATERIALS DESIGN, 2006, 13 (1-3): : 111 - 129
  • [10] Issues and challenges in orbital-free density functional calculations
    Karasiev, V. V.
    Trickey, S. B.
    [J]. COMPUTER PHYSICS COMMUNICATIONS, 2012, 183 (12) : 2519 - 2527