Strong coupling between quantum emitters and surface plasmon polariton modes in metal nanostructures has been extensively studied in recent years. A natural direction of research and a prerequisite for many applications is the possibility of external, in situ manipulation of the strength of the coupling. We review research on active control of surface plasmon–emitter strong coupling phenomena. Active control has been demonstrated for a variety of systems, such as metal nanohole arrays, nanoparticles, rods and dimers, combined with photochromic molecules, J-aggregates, and monolayers of MoS2, WS2, and WSe2. We discuss work on optical switching realized by changing photochromic molecules by UV and visible light between forms that couple stron...
In this thesis, light matter interaction in nanoscale has been studied from various aspects. The in...
The field of nanophotonics has realized rapid growth over the past several decades, as novel nanosca...
Metallic nanoparticles can generate collective oscillation of conduction electrons when excited by i...
Strong coupling between quantum emitters and surface plasmon polariton modes in metal nanostructures...
In the past decade, strong coupling between light and matter has transitioned from a theoretical ide...
The field of plasmonics1 offers a route to control light fields with metallic nanostructures through...
\u3cp\u3eArrays of metallic nanoparticles support collective plasmonic resonances known as surface l...
We experimentally demonstrate the active control of the coupling strength between porphyrin dyes and...
This book represents the first detailed description, including both theoretical aspects and experime...
At high intensities, light–matter interactions are controlled by the electric field of the exciting ...
Recent advances in research in the areas of Plasmonics have paved the way for the development of num...
International audienceSurface plasmon resonances can couple with molecular resonances (excitons) lea...
Plasmonics is the study of interaction of light with subwavelength metallic structures. Plasmonic na...
International audienceThe strong light−matter coupling, occurring when the light−matter interaction ...
This work deals with the study of optical properties of material near metallic surface. We shown tha...
In this thesis, light matter interaction in nanoscale has been studied from various aspects. The in...
The field of nanophotonics has realized rapid growth over the past several decades, as novel nanosca...
Metallic nanoparticles can generate collective oscillation of conduction electrons when excited by i...
Strong coupling between quantum emitters and surface plasmon polariton modes in metal nanostructures...
In the past decade, strong coupling between light and matter has transitioned from a theoretical ide...
The field of plasmonics1 offers a route to control light fields with metallic nanostructures through...
\u3cp\u3eArrays of metallic nanoparticles support collective plasmonic resonances known as surface l...
We experimentally demonstrate the active control of the coupling strength between porphyrin dyes and...
This book represents the first detailed description, including both theoretical aspects and experime...
At high intensities, light–matter interactions are controlled by the electric field of the exciting ...
Recent advances in research in the areas of Plasmonics have paved the way for the development of num...
International audienceSurface plasmon resonances can couple with molecular resonances (excitons) lea...
Plasmonics is the study of interaction of light with subwavelength metallic structures. Plasmonic na...
International audienceThe strong light−matter coupling, occurring when the light−matter interaction ...
This work deals with the study of optical properties of material near metallic surface. We shown tha...
In this thesis, light matter interaction in nanoscale has been studied from various aspects. The in...
The field of nanophotonics has realized rapid growth over the past several decades, as novel nanosca...
Metallic nanoparticles can generate collective oscillation of conduction electrons when excited by i...