The scattering from metal nanoparticles near their localized plasmon resonance is a promising way of increasing the light absorption in thin-film solar cells. Enhancements in photocurrent have been observed for a wide range of semiconductors and solar cell configurations. We review experimental and theoretical progress that has been made in recent years, describe the basic mechanisms at work, and provide an outlook on future prospects in this area
Photovoltaics are a key technology which can meet rising global demand for clean energy. However, si...
Enhancement of the electromagnetic properties of metallic nanostructures constitute an extensive res...
Metallic nanostructures can excite surface plasmons and can dramatically increase the optical path l...
The scattering from metal nanoparticles near their localized plasmon resonance is a promising way o...
a b s t r a c t Plasmonics is a promising new approach to enhance the light trapping properties of t...
Plasmonic light trapping in thin film solar cells is investigated using full-wave electromagnetic si...
There has been an increasing interest in plasmon-induced enhancement of solar cells and more recentl...
Global warming is a potential threat to life on earth and to human society. It is by much evidence l...
We describe some fundamental properties of localized Plasmon polaritons in metallic nanoparticles, a...
We review recent progress and future prospects for enhancement of solar cells using plasmonic resona...
ABSTRACT: Advanced light management in thin-film solar cells is becoming increasingly important to r...
We find that three mechanisms lead to the absorption enhancements of light in a thin-film amorphous ...
Plasmonic nanostructures have been recently investigated as a possible way to improve absorption of ...
textMetallic nanostructures such as nanoparticles, nanowires and nanoapertures exhibit extraordinary...
The incorporation of plasmonic scattering structures withphotovoltaics has been shown to increase so...
Photovoltaics are a key technology which can meet rising global demand for clean energy. However, si...
Enhancement of the electromagnetic properties of metallic nanostructures constitute an extensive res...
Metallic nanostructures can excite surface plasmons and can dramatically increase the optical path l...
The scattering from metal nanoparticles near their localized plasmon resonance is a promising way o...
a b s t r a c t Plasmonics is a promising new approach to enhance the light trapping properties of t...
Plasmonic light trapping in thin film solar cells is investigated using full-wave electromagnetic si...
There has been an increasing interest in plasmon-induced enhancement of solar cells and more recentl...
Global warming is a potential threat to life on earth and to human society. It is by much evidence l...
We describe some fundamental properties of localized Plasmon polaritons in metallic nanoparticles, a...
We review recent progress and future prospects for enhancement of solar cells using plasmonic resona...
ABSTRACT: Advanced light management in thin-film solar cells is becoming increasingly important to r...
We find that three mechanisms lead to the absorption enhancements of light in a thin-film amorphous ...
Plasmonic nanostructures have been recently investigated as a possible way to improve absorption of ...
textMetallic nanostructures such as nanoparticles, nanowires and nanoapertures exhibit extraordinary...
The incorporation of plasmonic scattering structures withphotovoltaics has been shown to increase so...
Photovoltaics are a key technology which can meet rising global demand for clean energy. However, si...
Enhancement of the electromagnetic properties of metallic nanostructures constitute an extensive res...
Metallic nanostructures can excite surface plasmons and can dramatically increase the optical path l...