We present results for many-body perturbation theory for the one-body Green's function at finite temperatures using the Matsubara formalism. Our method relies on the accurate representation of the single-particle states in standard Gaussian basis sets, allowing to efficiently compute, among other observables, quasiparticle energies and Dyson orbitals of atoms and molecules. In particular, we challenge the second- order treatment of the Coulomb interaction by benchmarking its accuracy for a well- established test set of small molecules, which includes also systems where the usual Hartree-Fock treatment encounters difficulties. We discuss different schemes how to extract quasiparticle properties and assess their range of applicability. ...
This thesis develops a theory for approximate quantum time-correlation functions, Matsubara dynamics...
Electronic excitations lie at the origin of most of the commonly measured spectra. However, the firs...
This dissertation investigates a new method for obtaining excited-state properties of finite, many-e...
While the use of Green’s function techniques has a long tradition in quantum chemistry, the possibil...
We implement time propagation of the nonequilibrium Green function for atoms and molecules by solvin...
We present a Kadanoff-Baym formalism to study time-dependent phenomena for systems of interacting el...
The problem of quantum dynamics in open systems has gained attention in recent decades and not the ...
The Faddeev random phase approximation (FRPA) method is applied to calculate the ground state and io...
In this work we discuss the application of nonequilibrium Green functions theory to atomic and molec...
We have calculated the self-consistent Green's function for a number of atoms and diatomic molecules...
It was recently proposed to use variational functionals based on manybody perturbation theory for th...
Accurate models of electron correlation are key to understanding and predicting important physical c...
We present a scalable single-particle framework to treat electronic correlation in molecules and mat...
This thesis develops a theory for approximate quantum time-correlation functions, Matsubara dynamics...
Electronic excitations lie at the origin of most of the commonly measured spectra. However, the firs...
This dissertation investigates a new method for obtaining excited-state properties of finite, many-e...
While the use of Green’s function techniques has a long tradition in quantum chemistry, the possibil...
We implement time propagation of the nonequilibrium Green function for atoms and molecules by solvin...
We present a Kadanoff-Baym formalism to study time-dependent phenomena for systems of interacting el...
The problem of quantum dynamics in open systems has gained attention in recent decades and not the ...
The Faddeev random phase approximation (FRPA) method is applied to calculate the ground state and io...
In this work we discuss the application of nonequilibrium Green functions theory to atomic and molec...
We have calculated the self-consistent Green's function for a number of atoms and diatomic molecules...
It was recently proposed to use variational functionals based on manybody perturbation theory for th...
Accurate models of electron correlation are key to understanding and predicting important physical c...
We present a scalable single-particle framework to treat electronic correlation in molecules and mat...
This thesis develops a theory for approximate quantum time-correlation functions, Matsubara dynamics...
Electronic excitations lie at the origin of most of the commonly measured spectra. However, the firs...
This dissertation investigates a new method for obtaining excited-state properties of finite, many-e...