Helium dimer dispersion forces and correlation potentials in density functional theory

被引:137
作者
Allen, MJ [1 ]
Tozer, DJ [1 ]
机构
[1] Univ Durham, Dept Chem, Durham DH1 3LE, England
关键词
D O I
10.1063/1.1522715
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 [物理化学]; 081704 [应用化学];
摘要
The dispersion interaction in the helium dimer is considered from the viewpoint of the force on a nucleus. At large internuclear separations, Brueckner coupled cluster BD(T) forces agree well with near-exact dispersion forces. The atomic density distortion associated with the dispersion force is quantified by comparing the BD(T) dimer density with a superposition of atomic densities. For density functional theory calculations in the Hartree-Fock-Kohn-Sham (HFKS) formalism, the accuracy of the dispersion force is governed by the correlation potential. Calculations using the conventional Lee-Yang-Parr [Phys. Rev. B 37, 785 (1988)] potential only generate a small density distortion, giving forces significantly smaller than BD(T). The BD(T) electron densities are therefore used to determine improved correlation potentials using a modified Zhao-Morrison-Parr (ZMP) approach [Phys. Rev. A 50, 2138 (1994)]. HFKS calculations using these ZMP potentials quantitatively reproduce the distortion, giving dispersion forces in good agreement with BD(T). The dimer ZMP correlation potential is partitioned into two parts, one equal to the sum of two unperturbed spherical atomic correlation potentials and the other representing an interaction potential. HFKS calculations using the former do not generate the distortion; forces are close to Hartree-Fock. Calculations using the latter do generate the distortion, giving forces essentially identical to those from the full dimer potential. The origin of the distortion is traced to the asymmetric structure of the interaction correlation potential in the vicinity of each nucleus. (C) 2002 American Institute of Physics.
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页码:11113 / 11120
页数:8
相关论文
共 65 条
[1]
Exchange functionals with improved long-range behavior and adiabatic connection methods without adjustable parameters:: The mPW and mPW1PW models [J].
Adamo, C ;
Barone, V .
JOURNAL OF CHEMICAL PHYSICS, 1998, 108 (02) :664-675
[2]
AMOS RD, 1998, CADPAC6 5 CAMBRIDGE
[3]
van der Waals interactions in density-functional theory [J].
Andersson, Y ;
Langreth, DC ;
Lundqvist, BI .
PHYSICAL REVIEW LETTERS, 1996, 76 (01) :102-105
[4]
Bader R. F. W., 1968, CAN J CHEM, V46, P953, DOI [10.1139/v68-157, DOI 10.1139/V68-157]
[5]
BADER RFW, 1990, ATOMS MOL QUANTUM TH, P325
[6]
DENSITY-FUNCTIONAL EXCHANGE-ENERGY APPROXIMATION WITH CORRECT ASYMPTOTIC-BEHAVIOR [J].
BECKE, AD .
PHYSICAL REVIEW A, 1988, 38 (06) :3098-3100
[7]
Correlation potentials and functionals in Hartree-Fock-Kohn-Sham theory [J].
Chan, GKL ;
Tozer, DJ ;
Handy, NC .
JOURNAL OF CHEMICAL PHYSICS, 1997, 107 (05) :1536-1543
[8]
An ab initio and DFT study of (N2)2 dimers [J].
Couronne, O ;
Ellinger, Y .
CHEMICAL PHYSICS LETTERS, 1999, 306 (1-2) :71-77
[9]
Prediction of dispersion forces: Is there a problem? [J].
Dobson, JF ;
McLennan, K ;
Rubio, A ;
Wang, J ;
Gould, T ;
Le, HM ;
Dinte, BP .
AUSTRALIAN JOURNAL OF CHEMISTRY, 2001, 54 (08) :513-527
[10]
Successful test of a seamless van der Waals density functional [J].
Dobson, JF ;
Wang, J .
PHYSICAL REVIEW LETTERS, 1999, 82 (10) :2123-2126