Electronic coherencedynamics in trans-polyacetylene oligomers are considered by explicitly computing the time dependent molecular polarization from the coupled dynamics of electronic and vibrational degrees of freedom in a mean-field mixed quantum-classical approximation. The oligomers are described by the Su-Schrieffer-Heeger Hamiltonian and the effect of decoherence is incorporated by propagating an ensemble of quantum-classical trajectories with initial conditions obtained by sampling the Wigner distribution of the nuclear degrees of freedom. The electronic coherence of superpositions between the ground and excited and between pairs of excited states is examined for chains of different length, and the dynamics is discussed in terms of th...
The light-harvesting efficiency of a photoactive molecular complex is largely determined by the prop...
Quantum superposition of molecular electronic states is very fragile because of thermal energy fluct...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Electronic coherencedynamics in trans-polyacetylene oligomers are considered by explicitly computing...
We identify an intriguing feature of the electron–vibrational dynamics of molecular systems via a co...
We identify an intriguing feature of the electron–vibrational dynamics of molecular systems via a co...
We identify an intriguing feature of the electron-vibrational dynamics of molecular systems via a co...
Using a combination of high-level ab initio electronic structure methods with efficient on-the-fly s...
Exposing a molecule to an intense light pulse can create a nonstationary quantum state, thus launchi...
Optical spectroscopy of conjugated molecules is described by using collective electronic coordinates...
AbstractCoherent phenomena in molecular chromophores interacting with a dissipative environment is a...
We model the coherent energy transfer of an electronic excitation within covalently linked aromatic ...
Quantum superposition of molecular electronic states is very fragile because of thermal energy fluct...
This chapter discusses the role of decoherence in mixed quantum–classical approaches to electronical...
In organic molecular assemblies, photo-induced energy and charge transfer is accompanied by signific...
The light-harvesting efficiency of a photoactive molecular complex is largely determined by the prop...
Quantum superposition of molecular electronic states is very fragile because of thermal energy fluct...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...
Electronic coherencedynamics in trans-polyacetylene oligomers are considered by explicitly computing...
We identify an intriguing feature of the electron–vibrational dynamics of molecular systems via a co...
We identify an intriguing feature of the electron–vibrational dynamics of molecular systems via a co...
We identify an intriguing feature of the electron-vibrational dynamics of molecular systems via a co...
Using a combination of high-level ab initio electronic structure methods with efficient on-the-fly s...
Exposing a molecule to an intense light pulse can create a nonstationary quantum state, thus launchi...
Optical spectroscopy of conjugated molecules is described by using collective electronic coordinates...
AbstractCoherent phenomena in molecular chromophores interacting with a dissipative environment is a...
We model the coherent energy transfer of an electronic excitation within covalently linked aromatic ...
Quantum superposition of molecular electronic states is very fragile because of thermal energy fluct...
This chapter discusses the role of decoherence in mixed quantum–classical approaches to electronical...
In organic molecular assemblies, photo-induced energy and charge transfer is accompanied by signific...
The light-harvesting efficiency of a photoactive molecular complex is largely determined by the prop...
Quantum superposition of molecular electronic states is very fragile because of thermal energy fluct...
Knowledge about the electronic motion in molecules is essential for our understanding of chemical re...