We construct a model describing the response of a hybrid system where the electromagnetic field-in particular, surface plasmon polaritons-couples strongly with electronic excitations of atoms or molecules. Our approach is based on the input-output theory of quantum optics, and in particular it takes into account the thermal and quantum vibrations of the molecules. The latter is described within the P(E) theory analogous to that used in the theory of dynamical Coulomb blockade. As a result, we are able to include the effect of the molecular Stokes shift on the strongly coupled response of the system. Our model then accounts for the asymmetric emission from upper and lower polariton modes. It also allows for an accurate description of the par...
Light-matter interactions are fundamentally important in chemistry. While traditional theory usually...
We present an analytical model describing the transition to strong coupling regime for an ensemble o...
The interaction between molecular electronic transitions and electromagnetic fields can be enlarged ...
We construct a model describing the response of a hybrid system where the electromagnetic field-in p...
The understanding and control of the dynamics of hybrid modes consisting of strongly coupled surface...
The multidisciplinary nature of the research in molecular nanoplasmonics, i.e., the use of plasmonic...
The advent of efficient light-confining platforms marked the burgeoning of the field of Cavity Quant...
Molecular polaritons have gained considerable attention due to their potential to control nanoscale ...
When photoactive molecules interact strongly with confined light modes, new hybrid light-matter stat...
Plasmonic nanocavities enable the confinement of molecules and electromagnetic fields within nanomet...
When optical transitions in materials couple strongly to photon modes, light and matter degrees of f...
Molecular emitters located in an optical cavity are known to experience a dramatic modification of t...
When photoactive molecules interact strongly with confined light modes, new hybrid light–matter stat...
When photoactive molecules interact strongly with confined light modes as found in plasmonic structu...
Near-field interactions between plasmons and molecules are treated in a simple unified approach. The...
Light-matter interactions are fundamentally important in chemistry. While traditional theory usually...
We present an analytical model describing the transition to strong coupling regime for an ensemble o...
The interaction between molecular electronic transitions and electromagnetic fields can be enlarged ...
We construct a model describing the response of a hybrid system where the electromagnetic field-in p...
The understanding and control of the dynamics of hybrid modes consisting of strongly coupled surface...
The multidisciplinary nature of the research in molecular nanoplasmonics, i.e., the use of plasmonic...
The advent of efficient light-confining platforms marked the burgeoning of the field of Cavity Quant...
Molecular polaritons have gained considerable attention due to their potential to control nanoscale ...
When photoactive molecules interact strongly with confined light modes, new hybrid light-matter stat...
Plasmonic nanocavities enable the confinement of molecules and electromagnetic fields within nanomet...
When optical transitions in materials couple strongly to photon modes, light and matter degrees of f...
Molecular emitters located in an optical cavity are known to experience a dramatic modification of t...
When photoactive molecules interact strongly with confined light modes, new hybrid light–matter stat...
When photoactive molecules interact strongly with confined light modes as found in plasmonic structu...
Near-field interactions between plasmons and molecules are treated in a simple unified approach. The...
Light-matter interactions are fundamentally important in chemistry. While traditional theory usually...
We present an analytical model describing the transition to strong coupling regime for an ensemble o...
The interaction between molecular electronic transitions and electromagnetic fields can be enlarged ...