Knowledge about the electronic motion in molecules is essential for our understanding of chemical reactions and biological processes. The advent of attosecond techniques opens up the possibility to induce electronic motion, observe it in real time, and potentially steer it. A fundamental question remains the factors influencing electronic decoherence and the role played by nuclear motion in this process. Here, we simulate the dynamics upon ionization of the polyatomic molecules paraxylene and modified bismethylene-adamantane, with a quantum mechanical treatment of both electron and nuclear dynamics using the direct dynamics variational multiconfigurational Gaussian method. Our simulations give new important physical insights about the expec...
Due to the electron correlation, a fast removal of an electron from a molecule may create a coherent...
Using a combination of high-level ab initio electronic structure methods with efficient on-the-fly s...
We demonstrate that charge migration can be ‘engineered’ in arbitrary molecular systems if a single ...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Photoionization using attosecond pulses can lead to the formation of coherent superpositions of the ...
Photoionization using attosecond pulses can lead to the formation of coherent superpositions of the ...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
Exposing a molecule to an intense light pulse can create a nonstationary quantum state, thus launchi...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
The advent of attosecond techniques opens up the possibility to observe experimentally electron dyna...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
Due to the electron correlation, a fast removal of an electron from a molecule may create a coherent...
Using a combination of high-level ab initio electronic structure methods with efficient on-the-fly s...
We demonstrate that charge migration can be ‘engineered’ in arbitrary molecular systems if a single ...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Photoionization using attosecond pulses can lead to the formation of coherent superpositions of the ...
Photoionization using attosecond pulses can lead to the formation of coherent superpositions of the ...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
Exposing a molecule to an intense light pulse can create a nonstationary quantum state, thus launchi...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
The advent of attosecond techniques opens up the possibility to observe experimentally electron dyna...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
We have simulated the coupled electron and nuclear dynamics using the Ehrenfest method upon valence ...
Due to the electron correlation, a fast removal of an electron from a molecule may create a coherent...
Using a combination of high-level ab initio electronic structure methods with efficient on-the-fly s...
We demonstrate that charge migration can be ‘engineered’ in arbitrary molecular systems if a single ...