An approach combining subsystem density embedding with the variational delta self-consistent field is presented, which extends current capabilities for excited-electronic-state calculations. It was applied on full-atomic nonadiabatic dynamics of a solvated diimide system, demonstrating that comparable accuracy can be achieved for this system for the investigated configuration space and with a shorter simulation time than the computationally more expensive conventional Kohn–Sham density functional theory-based method. This opens a new pragmatic technique for efficient simulation of nonadiabatic processes in the condensed phase, in particular, for liquids
Starting from our recently published implementation of nonadiabatic molecular dynamics (NAMD) on gra...
Many biological processes are characterized by an essentially quantum dynamical event, such as elect...
Simulations based on electronic structure theory naturally include polarization and have no transfer...
An approach combining subsystem density embedding with the variational delta self-consistent field i...
We present an efficient approach for surface hopping-based nonadiabatic dynamics in the condensed ph...
A procedure for the calculation of spin–orbit coupling (SOC) at the delta self-consistent field (ΔSC...
Department of ChemistryTheoretical and computational approaches are employed to study excited conden...
ABSTRACT: Closed expressions for nonadiabatic couplings are derived using the collective electronic ...
Closed expressions for nonadiabatic couplings are derived using the collective electronic oscillator...
CONSPECTUS: Recent developments in nonadiabatic dynamics enabled ab inito simulations of complex ult...
We introduce an efficient configuration interaction (CI) method for the calculation of mixed quantum...
A density matrix evolution (DME) method (H.J.C. Berendsen and J. Mavri, J. Phys. Chem., 97 (1993) 13...
In this article, we present a consistent derivation of a density functional theory (DFT) based embed...
This thesis concerns new developments within the orbital-free embedding theory, improvement of the e...
A mixed quantum-classical approach to simulate the coupled dynamics of electrons and nuclei in nanos...
Starting from our recently published implementation of nonadiabatic molecular dynamics (NAMD) on gra...
Many biological processes are characterized by an essentially quantum dynamical event, such as elect...
Simulations based on electronic structure theory naturally include polarization and have no transfer...
An approach combining subsystem density embedding with the variational delta self-consistent field i...
We present an efficient approach for surface hopping-based nonadiabatic dynamics in the condensed ph...
A procedure for the calculation of spin–orbit coupling (SOC) at the delta self-consistent field (ΔSC...
Department of ChemistryTheoretical and computational approaches are employed to study excited conden...
ABSTRACT: Closed expressions for nonadiabatic couplings are derived using the collective electronic ...
Closed expressions for nonadiabatic couplings are derived using the collective electronic oscillator...
CONSPECTUS: Recent developments in nonadiabatic dynamics enabled ab inito simulations of complex ult...
We introduce an efficient configuration interaction (CI) method for the calculation of mixed quantum...
A density matrix evolution (DME) method (H.J.C. Berendsen and J. Mavri, J. Phys. Chem., 97 (1993) 13...
In this article, we present a consistent derivation of a density functional theory (DFT) based embed...
This thesis concerns new developments within the orbital-free embedding theory, improvement of the e...
A mixed quantum-classical approach to simulate the coupled dynamics of electrons and nuclei in nanos...
Starting from our recently published implementation of nonadiabatic molecular dynamics (NAMD) on gra...
Many biological processes are characterized by an essentially quantum dynamical event, such as elect...
Simulations based on electronic structure theory naturally include polarization and have no transfer...