We present a review on the emerging materials for novel plasmonic colloidal nanocrystals. We start by explaining the basic processes involved in surface plasmon resonances in nanoparticles and then discuss the classes of nanocrystals that to date are particularly promising for tunable plasmonics: non-stoichiometric copper chalcogenides, extrinsically doped metal oxides, oxygen-deficient metal oxides and conductive metal oxides. We additionally introduce other emerging types of plasmonic nanocrystals and finally we give an outlook on nanocrystals of materials that could potentially display interesting plasmonic properties
Metasurfaces are ultrathin, quasi-two-dimensional materials that are engineered to control and manip...
Electrons and photons can coexist as a single entity called a surface plasmon—an elementary excitati...
Colloidal nanocrystals (NCs, i.e., crystalline nanoparticles) have become an important class of mate...
We present a review on the emerging materials for novel plasmonic colloidal nanocrystals. We start b...
Nanoplasmonics can be defined as the control of the flow of light by objects that are smaller than t...
Metallic nanostructures exhibit strong interactions with electromagnetic radiation, known as the loc...
This thesis summarizes the results of 20 original publications which are covering three closely conn...
Ordered arrays of metal nanoparticles offer new opportunities to engineer light–matter interactions ...
Semiconductor nanostructures are ideal candidates for non- metallic plasmonic materials that operate...
In the scientific literature colloidal nanocrystals are presented as promising materials for multipl...
CONSPECTUS: For decades, plasmonic nanoparticles have been extensively studied due to their extraord...
Assembly of noble metal nanocrystals gives rise to extraordinary plasmonic properties that are disti...
Noble metal nanoparticles can absorb incident light very efficiently due to their ability to support...
Plasmonic nanocrystals (NCs) can act as focusing lenses that capture incident light at wavelengths n...
Plasmonically active materials have the unique ability to use photons to drive a collective multi-el...
Metasurfaces are ultrathin, quasi-two-dimensional materials that are engineered to control and manip...
Electrons and photons can coexist as a single entity called a surface plasmon—an elementary excitati...
Colloidal nanocrystals (NCs, i.e., crystalline nanoparticles) have become an important class of mate...
We present a review on the emerging materials for novel plasmonic colloidal nanocrystals. We start b...
Nanoplasmonics can be defined as the control of the flow of light by objects that are smaller than t...
Metallic nanostructures exhibit strong interactions with electromagnetic radiation, known as the loc...
This thesis summarizes the results of 20 original publications which are covering three closely conn...
Ordered arrays of metal nanoparticles offer new opportunities to engineer light–matter interactions ...
Semiconductor nanostructures are ideal candidates for non- metallic plasmonic materials that operate...
In the scientific literature colloidal nanocrystals are presented as promising materials for multipl...
CONSPECTUS: For decades, plasmonic nanoparticles have been extensively studied due to their extraord...
Assembly of noble metal nanocrystals gives rise to extraordinary plasmonic properties that are disti...
Noble metal nanoparticles can absorb incident light very efficiently due to their ability to support...
Plasmonic nanocrystals (NCs) can act as focusing lenses that capture incident light at wavelengths n...
Plasmonically active materials have the unique ability to use photons to drive a collective multi-el...
Metasurfaces are ultrathin, quasi-two-dimensional materials that are engineered to control and manip...
Electrons and photons can coexist as a single entity called a surface plasmon—an elementary excitati...
Colloidal nanocrystals (NCs, i.e., crystalline nanoparticles) have become an important class of mate...