We present the open-source VOTCA-XTP software for the calculation of the excited-state electronic structure of molecules using many-body Green's function theory in the GW approximation with the Bethe-Salpeter equation (BSE). This work provides a summary of the underlying theory and discusses the details of its implementation based on Gaussian orbitals, including resolution-of-identity techniques and different approaches to the frequency integration of the self-energy or acceleration by offloading compute-intensive matrix operations using graphics processing units in a hybrid OpenMP/Cuda scheme. A distinctive feature of VOTCA-XTP is the capability to couple the calculation of electronic excitations to a classical polarizable environment on a...
We present a benchmark study of gas phase geometry optimizations in the excited states of carbon mon...
Electronic structure theory is an evolving field with abounding potential applications to a multitud...
Growing interest in characterizing charge-transfer (CT) processes inherent in many chemical interact...
We present the open-source VOTCA-XTP software for the calculation of the excited-state electronic st...
Many-body Green's functions theory within the GW approximation and the Bethe-Salpeter Equation (BSE)...
\u3cp\u3eMany-body Green's functions theory within the GW approximation and the Bethe-Salpeter Equat...
Many-body Green’s functions theory within the GW approximation and the Bethe-Salpeter Equation (BSE)...
Herein, we present a fragment-based approach for calculating the charged and neutral excited states ...
International audienceMany-body Green's function perturbation theories, such as the GW and Bethe-Sal...
Quasi-particle energies are important in predicting molecular ionization energies and bulk band stru...
The accurate prediction of electronic excitation energies in molecules is an area of intense researc...
180 p.The theory describing the interaction between light and matter at nanoscale is nearly as old a...
Electronic excitations lie at the origin of most of the commonly measured spectra. However, the firs...
13 pages, 3 figures, invited Perspective articleInternational audienceThe many-body Green's function...
We present a benchmark study of gas phase geometry optimizations in the excited states of carbon mon...
Electronic structure theory is an evolving field with abounding potential applications to a multitud...
Growing interest in characterizing charge-transfer (CT) processes inherent in many chemical interact...
We present the open-source VOTCA-XTP software for the calculation of the excited-state electronic st...
Many-body Green's functions theory within the GW approximation and the Bethe-Salpeter Equation (BSE)...
\u3cp\u3eMany-body Green's functions theory within the GW approximation and the Bethe-Salpeter Equat...
Many-body Green’s functions theory within the GW approximation and the Bethe-Salpeter Equation (BSE)...
Herein, we present a fragment-based approach for calculating the charged and neutral excited states ...
International audienceMany-body Green's function perturbation theories, such as the GW and Bethe-Sal...
Quasi-particle energies are important in predicting molecular ionization energies and bulk band stru...
The accurate prediction of electronic excitation energies in molecules is an area of intense researc...
180 p.The theory describing the interaction between light and matter at nanoscale is nearly as old a...
Electronic excitations lie at the origin of most of the commonly measured spectra. However, the firs...
13 pages, 3 figures, invited Perspective articleInternational audienceThe many-body Green's function...
We present a benchmark study of gas phase geometry optimizations in the excited states of carbon mon...
Electronic structure theory is an evolving field with abounding potential applications to a multitud...
Growing interest in characterizing charge-transfer (CT) processes inherent in many chemical interact...