We report a novel plasmonic solar cell design implemented on an amorphous silicon platform. The enhancement of the scattering and trapping of the light is achieved by embedding nano-metallic cubic particles within the cell's junction. Amorphous silicon cell with a thickness of 1200nm is used. The spectral absorption of the silicon cell is limited to wavelengths larger than 1.1 u. Our proposed solar cell has a p-i-n configuration, with the amorphous silicon as the photo-active layer. Silver cubic nanoparticles are embedded at different locations within the photoactive layers of the solar cell. With the use of an FDTD simulator, we are able to characterize the optical performance of the solar cell. Our results show that the plasmonic properti...
\u3cp\u3eThe efficiency of thin film Si photovoltaic (PV) cells is lower than cells made of c-Si waf...
Nanosphere lithography (NSL) provides an opportunity for a low-cost and scalable method to optically...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...
We present a design of implementing plasmonic nanoparticles made from silver onto the surface of amo...
We study n-i-p amorphous silicon solar cells with light-scattering nanoparticles in the back reflect...
In this work, we investigate the effects produced on the light absorption and scattering by silver n...
Plasmonic nanostructures have been recently investigated as a possible way to improve absorption of ...
Plasmonic thin film solar cells (modified with metallic nanostructures) often display enhanced light...
We find that three mechanisms lead to the absorption enhancements of light in a thin-film amorphous ...
This research project is focused on the process optimisation and optical enhancement of the hydrogen...
Recently plasmonic effects have gained tremendous interest in solar cell research because they are d...
Recent research in the rapidly emerging field of plasmonics has shown the potential to significantly...
The behaviour of plasmonic metal nanoparticles (MNPs) placed in contact with a thin dielectric film ...
Optically driven localised surface plasmons can be excited on sub-wavelength metal particles, which ...
Recently plasmonic effects have gained tremendous interest in solar cell research because they are d...
\u3cp\u3eThe efficiency of thin film Si photovoltaic (PV) cells is lower than cells made of c-Si waf...
Nanosphere lithography (NSL) provides an opportunity for a low-cost and scalable method to optically...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...
We present a design of implementing plasmonic nanoparticles made from silver onto the surface of amo...
We study n-i-p amorphous silicon solar cells with light-scattering nanoparticles in the back reflect...
In this work, we investigate the effects produced on the light absorption and scattering by silver n...
Plasmonic nanostructures have been recently investigated as a possible way to improve absorption of ...
Plasmonic thin film solar cells (modified with metallic nanostructures) often display enhanced light...
We find that three mechanisms lead to the absorption enhancements of light in a thin-film amorphous ...
This research project is focused on the process optimisation and optical enhancement of the hydrogen...
Recently plasmonic effects have gained tremendous interest in solar cell research because they are d...
Recent research in the rapidly emerging field of plasmonics has shown the potential to significantly...
The behaviour of plasmonic metal nanoparticles (MNPs) placed in contact with a thin dielectric film ...
Optically driven localised surface plasmons can be excited on sub-wavelength metal particles, which ...
Recently plasmonic effects have gained tremendous interest in solar cell research because they are d...
\u3cp\u3eThe efficiency of thin film Si photovoltaic (PV) cells is lower than cells made of c-Si waf...
Nanosphere lithography (NSL) provides an opportunity for a low-cost and scalable method to optically...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...