To guide the design of plasmonic solar cells, theoretical investigation of core (metal)-shell (dielectric) nanoparticles for light absorption enhancement in thin film Si solar cells is performed. In contrast to the reported simulations and experimental results that rear-located surface plasmon on bare metallic nanoparticles is preferred, the core-shell nanoparticles demonstrate better performance when surface plasmon is located in front of a solar cell. This has been attributed to the enhanced forward scattering with vanishing backward scattering preserved over a wide spectral range in core-shell nanoparticles. This work provides a concept to achieve enhanced forward scattering with weakened backward scattering in plasmonic thin film solar ...
Optically driven localised surface plasmons can be excited on sub-wavelength metal particles, which ...
Global warming is a potential threat to life on earth and to human society. It is by much evidence l...
Journal ArticleWe investigate the light-trapping effects of dielectric nanoparticles embedded within...
In this paper, a finite-difference time-domain method is adopted to investigate the light scattering...
Thin-film photovoltaic cells are a promising technology that can harvest solar energy at a low cost....
The scattering from metal nanoparticles near their localized plasmon resonance is a promising way o...
A doubling of the photocurrent due to light trapping is demonstrated by the combination of silvernan...
Our findings show that the extinction spectrum of core-shell type plasmonic particles can be effecti...
Photovoltaics are a key technology which can meet rising global demand for clean energy. However, si...
Efficient light management in optoelectronic devices requires nanosystems where high optical qualiti...
The optical properties of localized surface plasmon resonances (LSPR) sustained by self-assembled si...
a b s t r a c t Plasmonics is a promising new approach to enhance the light trapping properties of t...
In this paper, the effect of gold nanoparticles on n-i-p a-Si:H solar cells with different intrinsic...
The intense light scattered from metal nanoparticles sustaining surface plasmons makes them attracti...
The efficiency of thin film Si photovoltaic (PV) cells is lower than cells made of c-Si wafers, but ...
Optically driven localised surface plasmons can be excited on sub-wavelength metal particles, which ...
Global warming is a potential threat to life on earth and to human society. It is by much evidence l...
Journal ArticleWe investigate the light-trapping effects of dielectric nanoparticles embedded within...
In this paper, a finite-difference time-domain method is adopted to investigate the light scattering...
Thin-film photovoltaic cells are a promising technology that can harvest solar energy at a low cost....
The scattering from metal nanoparticles near their localized plasmon resonance is a promising way o...
A doubling of the photocurrent due to light trapping is demonstrated by the combination of silvernan...
Our findings show that the extinction spectrum of core-shell type plasmonic particles can be effecti...
Photovoltaics are a key technology which can meet rising global demand for clean energy. However, si...
Efficient light management in optoelectronic devices requires nanosystems where high optical qualiti...
The optical properties of localized surface plasmon resonances (LSPR) sustained by self-assembled si...
a b s t r a c t Plasmonics is a promising new approach to enhance the light trapping properties of t...
In this paper, the effect of gold nanoparticles on n-i-p a-Si:H solar cells with different intrinsic...
The intense light scattered from metal nanoparticles sustaining surface plasmons makes them attracti...
The efficiency of thin film Si photovoltaic (PV) cells is lower than cells made of c-Si wafers, but ...
Optically driven localised surface plasmons can be excited on sub-wavelength metal particles, which ...
Global warming is a potential threat to life on earth and to human society. It is by much evidence l...
Journal ArticleWe investigate the light-trapping effects of dielectric nanoparticles embedded within...