Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabatic effects. From a theoretical perspective, the treatment of nonadiabatic processes makes it necessary to go beyond the (quasi) static picture provided by the time-independent Schrodinger equation within the BornOppenheimer approximation and to find ways to tackle instead the full timedependent electronic and nuclear quantum problem. In this review, we give an overview of different nonadiabatic processes that manifest themselves in electronic and nuclear dynamics ranging from the nonadiabatic phenomena taking place during tunnel ionization of atoms in strong laser fields to the radiationless relaxation through conical intersections and the non...
Photoinduced excitation and relaxation of organic molecules (C2H4 and CH2NH+2) are investigated by m...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
Exposing a molecule to intense light pulses may bring this molecule to a nonstationary quantum state...
Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabati...
Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabati...
Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabati...
An extension of the nonadiabatic quantum molecular dynamics approach is presented to account for ele...
The Born‐Oppenheimer approximation constitutes a cornerstone of our understanding of molecules and t...
An extension of the nonadiabatic quantum molecular dynamics approach is presented to account for ele...
Nuclear quantum dynamics beyond the Born-Oppenheimer approximation is performed using quantum trajec...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
Many chemical reactions exhibit nonadiabatic effects as a consequence of coupling between electronic...
Many chemical reactions exhibit nonadiabatic effects as a consequence of coupling between electronic...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
We propose a general theoretical scheme of relativistic electron-nucleus coupled dynamics of molecul...
Photoinduced excitation and relaxation of organic molecules (C2H4 and CH2NH+2) are investigated by m...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
Exposing a molecule to intense light pulses may bring this molecule to a nonstationary quantum state...
Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabati...
Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabati...
Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabati...
An extension of the nonadiabatic quantum molecular dynamics approach is presented to account for ele...
The Born‐Oppenheimer approximation constitutes a cornerstone of our understanding of molecules and t...
An extension of the nonadiabatic quantum molecular dynamics approach is presented to account for ele...
Nuclear quantum dynamics beyond the Born-Oppenheimer approximation is performed using quantum trajec...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
Many chemical reactions exhibit nonadiabatic effects as a consequence of coupling between electronic...
Many chemical reactions exhibit nonadiabatic effects as a consequence of coupling between electronic...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
We propose a general theoretical scheme of relativistic electron-nucleus coupled dynamics of molecul...
Photoinduced excitation and relaxation of organic molecules (C2H4 and CH2NH+2) are investigated by m...
The non-adiabatic quantum molecular dynamics (NA-QMD) method couples self-consistently classical nuc...
Exposing a molecule to intense light pulses may bring this molecule to a nonstationary quantum state...