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Light-matter interaction in bulk, surface, and subwavelength-structured matter.
Engel, M. et al. Light-matter interaction in a microcavity-controlled graphene transistor.
The project improves light-matter interaction by the use a surface plasmonic nanoparticle layer.
In this paper, asymmetric radiation transfer based on linear light-matter interaction has been proposed.
Caballero-Benitez, S. F., Mazzucchi, G. & Mekhov, I. B. Quantum simulators based on the global collective light-matter interaction.
We are also interested in various non-linear nano-optical phenomena, as well as light-matter interaction in plasmonic systems.
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Not only do plasmonic nanoparticles of Au, Ag, and Cu absorb visible light efficiently, this strong-light-matter interaction can be paired with their ability to activate CO2.
We find that the interplay between cavity feedback and optical mode confinement strongly determines the device-inherent light-matter-interaction.
Periodic nanostructures in photonics facilitate a far-reaching control of light propagation and light matter interaction.
One can utilize deep subwavelength-scale optical constituents to expand the functionality of such 1D nanostructure and realize a variety of nanophotonic devices requiring both efficient light manipulation and strong light matter interaction.
One-dimensional (1D) dielectric nanostructures with high refractive indices offer unique opportunities for exploring light-sensitive responses of materials, affording a series of optical resonances that further boost light matter interaction compared to their bulk counterparts [1 8].
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