Optical Materials Express · 2017 · 103 citations · 98 references
EngineeringMie PerformanceChemistryTopological InsulatorsSemiconductorsQuantum MaterialsDielectric Mie ResonancesNanophotonicsPlasmonic MaterialMaterials ScienceQuantum SciencePhysicsTopological HeterostructuresTopological MaterialInterband TransitionsNanophotonics.plasmonic ResonancesPlasmonicsPlasmonic CatalysisNatural SciencesTopological InsulatorApplied PhysicsCondensed Matter PhysicsNew Driving ForceOptoelectronics
Plasmonic and dielectric Mie resonances in subwavelength nanostructures provide an efficient way to manipulate light below the diffraction limit that has fostered the growth of plasmonics and nanophotonics.Plasmonic resonances have been mainly related with the excitation of free charge carriers, initially in metals, and dielectric Mie resonances have been identified in Si nanostructures.Remarkably, although much less studied, semi-metals, semiconductors and topological insulators of the p-block enable plasmonic resonances without free charge carriers and dielectric Mie resonances with enhanced properties compared with Si.In this review, we explain how interband transitions in these materials show a major role in this duality.We evaluate the plasmonic and Mie performance of nanostructures made of relevant p-block elements and compounds, especially Bi, and discuss their promising potential for applications ranging from switchable plasmonics and nanophotonics to energy conversion, especially photocatalysis.
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