An accurate description of nonbonded interactions is important in investigating dynamics of molecular systems. In many situations, fixed point charge models are successfully applied to explaining various chemical phenomena. However, these models with conventional formulations will not be appropriate in elucidating the detailed dynamics during nonadiabatic events. This is mainly because the chemical properties of any molecule, especially its electronic populations, significantly change with respect to molecular distortions in the vicinity of the surface crossing. To overcome this issue in molecular simulations yet within the framework of the fixed point charge model, we define a diabatic electronic population matrix and substitute it for the...
Avoided crossings and conical intersections of adiabatic potential energy surfaces are considered. D...
In this work, the advantages of a locally diabatic propagation of the electronic wave function in su...
The (time-independent) Schrödinger equation for atomistic systems is solved by using the adiabatic ...
An accurate description of nonbonded interactions is important in investigating dynamics of molecula...
Understanding photochemical processes often requires accurate descriptions of the nonadiabatic event...
Simulating molecular dynamics directly on quantum chemically obtained potential energy surfaces is g...
Simulations of photophysical processes in biological systems are essential for understanding the rol...
A detailed understanding of photophysical processes in molecular aggregates requires the precise cha...
In this work, the advantages of a locally diabatic propagation of the electronic wave function in su...
The thesis introduces the concept of the adiabatic approximation in relation to the dynamics of the ...
A method for computing coupled, diabatic state representations of the lowest electronic states coupl...
Diabatic states have a long history in chemistry, beginning with early valence bond pictures of mole...
We demonstrate that Boys-localized diabatic states do indeed exhibit small derivative couplings, as ...
A detailed understanding of the interface between nuclear dynamics and electronic structure is cruci...
A detailed understanding of the interface between nuclear dynamics and electronic structure is cruci...
Avoided crossings and conical intersections of adiabatic potential energy surfaces are considered. D...
In this work, the advantages of a locally diabatic propagation of the electronic wave function in su...
The (time-independent) Schrödinger equation for atomistic systems is solved by using the adiabatic ...
An accurate description of nonbonded interactions is important in investigating dynamics of molecula...
Understanding photochemical processes often requires accurate descriptions of the nonadiabatic event...
Simulating molecular dynamics directly on quantum chemically obtained potential energy surfaces is g...
Simulations of photophysical processes in biological systems are essential for understanding the rol...
A detailed understanding of photophysical processes in molecular aggregates requires the precise cha...
In this work, the advantages of a locally diabatic propagation of the electronic wave function in su...
The thesis introduces the concept of the adiabatic approximation in relation to the dynamics of the ...
A method for computing coupled, diabatic state representations of the lowest electronic states coupl...
Diabatic states have a long history in chemistry, beginning with early valence bond pictures of mole...
We demonstrate that Boys-localized diabatic states do indeed exhibit small derivative couplings, as ...
A detailed understanding of the interface between nuclear dynamics and electronic structure is cruci...
A detailed understanding of the interface between nuclear dynamics and electronic structure is cruci...
Avoided crossings and conical intersections of adiabatic potential energy surfaces are considered. D...
In this work, the advantages of a locally diabatic propagation of the electronic wave function in su...
The (time-independent) Schrödinger equation for atomistic systems is solved by using the adiabatic ...