| openaire: EC/H2020/745115/EU//OPLDBose–Einstein condensation is a remarkable manifestation of quantum statistics and macroscopic quantum coherence. Superconductivity and superfluidity have their origin in Bose–Einstein condensation. Ultracold quantum gases have provided condensates close to the original ideas of Bose and Einstein, while condensation of polaritons and magnons has introduced novel concepts of non-equilibrium condensation. Here, we demonstrate a Bose–Einstein condensate of surface plasmon polaritons in lattice modes of a metal nanoparticle array. Interaction of the nanoscale-confined surface plasmons with a room-temperature bath of dye molecules enables thermalization and condensation in picoseconds. The ultrafast thermaliza...
Exciton-polaritons, hybrid light–matter bosonic quasiparticles, can condense into a single quantum s...
Plasmonic structures are known to support the modes with sub-wavelength volumes in which the field/m...
Exciton-polaritons are composite quasiparticles that result from the coupling of excitonic transitio...
| openaire: EC/H2020/745115/EU//OPLDBose–Einstein condensation is a remarkable manifestation of quan...
Bosonic condensates offer exciting prospects for studies of non-equilibrium quantum dynamics. Unders...
We study arrays of plasmonic nanoparticles combined with quantum emitters, quantum plasmonic lattice...
Polaritons are quasiparticles arising from the strong coupling of electromagnetic waves in cavities ...
We present indications of thermalization and cooling of quasiparticles, a precursor for quantum cond...
We present indications of thermalization and cooling of quasiparticles, a precursor for quantum cond...
A metallic nanoparticle array with a periodicity comparable to the single particle resonance can sho...
\u3cp\u3eArrays of metallic nanoparticles support collective plasmonic resonances known as surface l...
Exciton–polariton condensation in organic materials, arising from the coupling of Frenkel excitons t...
Plasmonics takes advantage of the coupling of light to charge oscillations in metals, which enables ...
\u3cp\u3eExciton-polariton condensation in organic materials, arising from the coupling of Frenkel e...
Exciton-polaritons, hybrid light–matter bosonic quasiparticles, can condense into a single quantum s...
Plasmonic structures are known to support the modes with sub-wavelength volumes in which the field/m...
Exciton-polaritons are composite quasiparticles that result from the coupling of excitonic transitio...
| openaire: EC/H2020/745115/EU//OPLDBose–Einstein condensation is a remarkable manifestation of quan...
Bosonic condensates offer exciting prospects for studies of non-equilibrium quantum dynamics. Unders...
We study arrays of plasmonic nanoparticles combined with quantum emitters, quantum plasmonic lattice...
Polaritons are quasiparticles arising from the strong coupling of electromagnetic waves in cavities ...
We present indications of thermalization and cooling of quasiparticles, a precursor for quantum cond...
We present indications of thermalization and cooling of quasiparticles, a precursor for quantum cond...
A metallic nanoparticle array with a periodicity comparable to the single particle resonance can sho...
\u3cp\u3eArrays of metallic nanoparticles support collective plasmonic resonances known as surface l...
Exciton–polariton condensation in organic materials, arising from the coupling of Frenkel excitons t...
Plasmonics takes advantage of the coupling of light to charge oscillations in metals, which enables ...
\u3cp\u3eExciton-polariton condensation in organic materials, arising from the coupling of Frenkel e...
Exciton-polaritons, hybrid light–matter bosonic quasiparticles, can condense into a single quantum s...
Plasmonic structures are known to support the modes with sub-wavelength volumes in which the field/m...
Exciton-polaritons are composite quasiparticles that result from the coupling of excitonic transitio...