Dyson-orbital concepts for description of electrons in molecules

被引:90
作者
Ortiz, J., V [1 ]
机构
[1] Auburn Univ, Dept Chem & Biochem, Auburn, AL 36849 USA
关键词
PHOTOIONIZATION CROSS-SECTIONS; HARTREE-FOCK LIMIT; VERTICAL IONIZATION ENERGIES; PARTICLE GREENS-FUNCTION; GAUSSIAN-BASIS SETS; APPROXIMATE BRUECKNER ORBITALS; NATURAL SPIN-ORBITALS; PROPAGATOR THEORY; MOMENTUM-SPECTROSCOPY; BINDING-ENERGIES;
D O I
10.1063/5.0016472
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
Dyson orbitals, their electron-binding energies, and probability factors provide descriptions of electrons in molecules that are experimentally verifiable and that generalize qualitatively useful concepts of uncorrelated, molecular-orbital theory to the exact limit of Schrodinger's time-independent equation. Dyson orbitals are defined as overlaps between initial, N-electron states and final states with N +/- 1 electrons and therefore are useful in the prediction and interpretation of many kinds of spectroscopic and scattering experiments. They also are characteristic of N-electron initial states and may be used to construct electron densities, one-electron properties, and total energies with correlated Aufbau procedures that include probability factors between zero and unity. Relationships with natural orbitals, Kohn-Sham orbitals, and Hartree-Fock orbitals facilitate insights into the descriptive capabilities of Dyson orbitals. Electron-propagator approximations that employ the Dyson quasiparticle equation or super-operator secular equations enable direct determination of Dyson orbitals and obviate the need for many-electron wavefunctions of initial or final states. Numerical comparisons of the amplitudes and probability factors of Dyson orbitals calculated with several self-energy approximations reveal the effects of electron correlation on these uniquely defined, one-electron wavefunctions.
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页数:28
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