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Self-consistent solution of the Dyson equation for atoms and molecules within a conserving approximation
- Source :
- Journal of Chemical Physics, 122(16):164102, art.-164102. AMER INST PHYSICS
- Publication Year :
- 2005
-
Abstract
- We have calculated the self-consistent Green's function for a number of atoms and diatomic molecules. This Green's function is obtained from a conserving self-energy approximation, which implies that the observables calculated from the Green's functions agree with the macroscopic conservation laws for p;article number, momentum, and energy. As a further consequence, the kinetic and potential energies agree with the virial theorem, and the many possible methods for calculating the total energy all give the same result. In these calculations we use the finite temperature formalism and calculate the Green's function on the imaginary time axis. This allows for a simple extension to nonequilibrium systems. We have compared the energies from self-consistent Green's functions to those of nonselfconsistent schemes and also calculated ionization potentials from the Green's functions by using the extended Koopmans' theorem. (c) 2005 American Institute of Physics.
- Subjects :
- Conservation law
Koopmans' theorem
Chemistry
Atoms in molecules
General Physics and Astronomy
Non-equilibrium thermodynamics
ELECTRON-GAS
Kinetic energy
Diatomic molecule
Virial theorem
GREENS-FUNCTION
DENSITY-FUNCTIONAL THEORY
TOTAL ENERGIES
SYSTEMS
Quantum mechanics
KOOPMANS THEOREM
Density functional theory
MOLLER-PLESSET
Physical and Theoretical Chemistry
Subjects
Details
- Language :
- English
- ISSN :
- 00219606
- Database :
- OpenAIRE
- Journal :
- Journal of Chemical Physics, 122(16):164102, art.-164102. AMER INST PHYSICS
- Accession number :
- edsair.doi.dedup.....f37446695c6036311c56dad945d80ed6