Improving the orbital-free density functional theory description of covalent materials

被引:74
作者
Zhou, BJ
Ligneres, VL
Carter, EA
机构
[1] Univ Calif Los Angeles, Dept Chem & Biochem, Los Angeles, CA 90095 USA
[2] Princeton Univ, Dept Chem, Princeton, NJ 08544 USA
[3] Princeton Univ, Dept Mech & Aerosp Engn, Princeton, NJ 08544 USA
[4] Princeton Univ, Program Appl & Computat Math, Princeton, NJ 08544 USA
关键词
D O I
10.1063/1.1834563
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
The essential challenge in orbital-free density functional theory (OF-DFT) is to construct accurate kinetic energy density functionals (KEDFs) with general applicability (i.e., transferability). During the last decade, several linear-response (LR)-based KEDFs have been proposed. Among them, the Wang-Govind-Carter (WGC) KEDF, containing a density-dependent response kernel, is one of the most accurate that still affords a linear scaling algorithm. For nearly-free-electron-like metals such as A1 and its alloys, OF-DFT employing the WGC KEDF produces bulk properties in good agreement with orbital-based Kohn-Sham (KS) DFT predictions. However, when OF-DFT, using the WGC KEDF combined with a recently proposed bulk-derived local pseudopotential (BLPS), was applied to semiconducting and metallic phases of Si, problems arose with convergence of the self-consistent density and energy, leading to poor results. Here we provide evidence that the convergence problem is very likely caused by the use of a truncated. Taylor series expansion of the WGC response kernel. Moreover, we show that a defect in the ansatz for the first-order reduced density matrix underlying the LR KEDFs limits the accuracy of these KEDFs. By optimizing the two free parameters involved in the WGC KEDF, the two-body Fermi wave vector mixing parameter gamma and the reference density rho(*) used in the Taylor expansion, OF-DFT calculations with the BLPS can achieve semiquantitative results for nine phases of bulk silicon. These new parameters are recommended whenever the WGC KEDF is used to study nonmetallic systems. (C) 2005 American Institute of Physics.
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页数:10
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共 122 条
[51]  
Harrison W. A., 1980, SOLID STATE THEORY
[52]   The wave mechanics of an atom with a non-Coulomb central field Part I theory and methods [J].
Hartree, DR .
PROCEEDINGS OF THE CAMBRIDGE PHILOSOPHICAL SOCIETY, 1928, 24 :89-110
[53]   Failure of density-matrix minimization methods for linear-scaling density-functional theory using the Kohn penalty-functional [J].
Haynes, PD ;
Payne, MC .
SOLID STATE COMMUNICATIONS, 1998, 108 (10) :737-741
[54]   QUANTUM CORRECTIONS TO THOMAS-FERMI APPROXIMATION - KIRZHNITS METHOD [J].
HODGES, CH .
CANADIAN JOURNAL OF PHYSICS, 1973, 51 (13) :1428-1437
[55]   INHOMOGENEOUS ELECTRON-GAS [J].
RAJAGOPAL, AK ;
CALLAWAY, J .
PHYSICAL REVIEW B, 1973, 7 (05) :1912-1919
[56]   SELF-CONSISTENT PSEUDOPOTENTIAL CALCULATIONS OF THE EQUILIBRIUM PROPERTIES OF BULK AND SURFACE SI [J].
IHM, J ;
COHEN, ML .
SOLID STATE COMMUNICATIONS, 1979, 29 (10) :711-714
[57]   SEMICLASSICAL APPROXIMATION IN A REALISTIC ONE-BODY POTENTIAL [J].
JENNINGS, BK ;
BHADURI, RK ;
BRACK, M .
NUCLEAR PHYSICS A, 1975, 253 (01) :29-44
[58]   Thermal properties of the self-interstitial in aluminum: An ab initio molecular-dynamics study [J].
Jesson, BJ ;
Foley, M ;
Madden, PA .
PHYSICAL REVIEW B, 1997, 55 (08) :4941-4946
[59]   NON-SINGULAR ATOMIC PSEUDOPOTENTIALS FOR SOLID-STATE APPLICATIONS [J].
KERKER, GP .
JOURNAL OF PHYSICS C-SOLID STATE PHYSICS, 1980, 13 (09) :L189-L194
[60]  
KIRZHNITS DA, 1957, SOV PHYS JETP-USSR, V5, P64