TY - JOUR
T1 - Correct dissociation limit for the exchange-correlation energy and potential
AU - Gritsenko, O.V.
AU - Baerends, E.J.
PY - 2006
Y1 - 2006
N2 - Local and semilocal functional like the local density (LDA) and generalized gradient approximations (GGA) fail to provide correct behavior during the dissociation of electron pair bonds: the asympinterdependencetotic potential energy curve is wrong, the dissociation in the heteronuclear case leads to partially ionic instead of neutral atoms, and the time-dependent density functional theory (TD-DFT) excitation energies behave incorrectly upon bond stretching. We demonstrate that such errors can be avoided by the use of an orbital-dependent exchange-correlation (xc) functional. Such a functional needs to incorporate, in contrast to the popular exact exchange functional, the electron correlation effects. The demonstration is given for the electron pair bond of a diatomic molecule AB with just one orbital on A and one on B. This simple two-orbital model affords an analytical inversion of the density response function, which is used to show that the orbitaldependent xc functional described previously, possesses the correct dissociation limit for the xc energy and potential. The correct potential (xc hole potential in the symmetric case A=B, for example, for the dissociating H
AB - Local and semilocal functional like the local density (LDA) and generalized gradient approximations (GGA) fail to provide correct behavior during the dissociation of electron pair bonds: the asympinterdependencetotic potential energy curve is wrong, the dissociation in the heteronuclear case leads to partially ionic instead of neutral atoms, and the time-dependent density functional theory (TD-DFT) excitation energies behave incorrectly upon bond stretching. We demonstrate that such errors can be avoided by the use of an orbital-dependent exchange-correlation (xc) functional. Such a functional needs to incorporate, in contrast to the popular exact exchange functional, the electron correlation effects. The demonstration is given for the electron pair bond of a diatomic molecule AB with just one orbital on A and one on B. This simple two-orbital model affords an analytical inversion of the density response function, which is used to show that the orbitaldependent xc functional described previously, possesses the correct dissociation limit for the xc energy and potential. The correct potential (xc hole potential in the symmetric case A=B, for example, for the dissociating H
UR - https://www.scopus.com/pages/publications/33750910697
UR - https://www.scopus.com/inward/citedby.url?scp=33750910697&partnerID=8YFLogxK
U2 - 10.1002/qua.21100
DO - 10.1002/qua.21100
M3 - Article
SN - 0020-7608
VL - 106
SP - 3167
EP - 3177
JO - International Journal of Quantum Chemistry
JF - International Journal of Quantum Chemistry
IS - 15
ER -