18 pags., 3 figs.,The combination of time-dependent density functional theory and quantum optimal control formalism is used to optimize the shape of ultra-short laser pulses in order to achieve the photodissociation of the hydrogen molecule. The very short pulse durations used in this work (a few femtoseconds) do not allow for significant nuclear movement during irradiation, and thus the dissociation mechanism is sequential. During pulse irradiation, a large sudden momentum is communicated which can be understood in terms of population of excited, bound or unbound, dissociative electronic states. The target is defined in terms of the average opposing force during the action of the pulse, or equivalently, in terms of the final dissociative v...
In ultrafast molecular sciences, short laser pulses are used to initiate and interrogate chemical an...
Ultrafast state-selective dynamics of diatomic molecules in the electronic ground state under the co...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
The combination of time-dependent density functional theory and quantum optimal control formalism is...
The combination of nonadiabatic Ehrenfest-path molecular dynamics (EMD) based on time-dependent dens...
We show that quantum optimal control theory (OCT) and time-dependent density-functional theory (TDDF...
The beauty of ultrafast science lies inherently in the ability to induce and image dynamics on a tim...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
We present a kinematically complete and time-resolved study of the dissociation dynamics of H 2 + us...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
$^{a}$T. Baumert et al, Appl. Phys. B 65, 779 (1997) $^{b}$M. Bergt et al, Science 282, 919 (1998)Au...
$^{a}$T. Baumert et al, Appl. Phys. B 65, 779 (1997) $^{b}$M. Bergt et al, Science 282, 919 (1998)Au...
A theoretical study on the coupled electron-nuclear dynamics of HD+ molecular ions under ultrashort,...
In ultrafast molecular sciences, short laser pulses are used to initiate and interrogate chemical an...
Ultrafast state-selective dynamics of diatomic molecules in the electronic ground state under the co...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
The combination of time-dependent density functional theory and quantum optimal control formalism is...
The combination of nonadiabatic Ehrenfest-path molecular dynamics (EMD) based on time-dependent dens...
We show that quantum optimal control theory (OCT) and time-dependent density-functional theory (TDDF...
The beauty of ultrafast science lies inherently in the ability to induce and image dynamics on a tim...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
We present a kinematically complete and time-resolved study of the dissociation dynamics of H 2 + us...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...
$^{a}$T. Baumert et al, Appl. Phys. B 65, 779 (1997) $^{b}$M. Bergt et al, Science 282, 919 (1998)Au...
$^{a}$T. Baumert et al, Appl. Phys. B 65, 779 (1997) $^{b}$M. Bergt et al, Science 282, 919 (1998)Au...
A theoretical study on the coupled electron-nuclear dynamics of HD+ molecular ions under ultrashort,...
In ultrafast molecular sciences, short laser pulses are used to initiate and interrogate chemical an...
Ultrafast state-selective dynamics of diatomic molecules in the electronic ground state under the co...
Recent advances in laser technology allow us to follow electronic motion at its natural time-scale w...