We show experimentally that the photocurrent of thin-film hydrogenated microcrystalline silicon (?c-Si:H) solar cells can be enhanced by 4.5?mA/cm2 with a plasmonic back reflector (BR). The light trapping performance is improved using plasmonic BR with broader angular scattering and lower parasitic absorption loss through tuning the size of silver nanoparticles. The ?c-Si:H solar cells deposited on the improved plasmonic BR demonstrate a high photocurrent of 26.3?mA/cm2 which is comparable to the state-of-the-art textured Ag/ZnO BR. The commonly observed deterioration of fill factor is avoided by using ?c-SiOx:H as the n-layer for solar cells deposited on plasmonic BR
The low conversion efficiency of thin-film silicon solar cells currently prevents them from competin...
Most types of thin film solar cells require light management to achieve sufficient light absorptance...
Most types of thin film solar cells require light management to achieve sufficient light absorptance...
We show experimentally that the photocurrent of thin-film hydrogenated microcrystalline silicon (?c-...
Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high effic...
Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high effic...
Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high effic...
The authors acknowledge Francesco Ruffino for the AFM measurements. This work was funded by the EU F...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...
In this study, we experimentally investigate the light-trapping effect of plasmonic reflection grati...
We experimentally investigate the light-trapping effect of plasmonic reflection grating back contact...
Photocurrent enhancement in thin a-Si:H solar cells due to the plasmonic light trapping is investiga...
Photocurrent enhancement in thin a-Si:H solar cells due to the plasmonic light trapping is investiga...
A doubling of the photocurrent due to light trapping is demonstrated by the combination of silvernan...
The low conversion efficiency of thin-film silicon solar cells currently prevents them from competin...
Most types of thin film solar cells require light management to achieve sufficient light absorptance...
Most types of thin film solar cells require light management to achieve sufficient light absorptance...
We show experimentally that the photocurrent of thin-film hydrogenated microcrystalline silicon (?c-...
Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high effic...
Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high effic...
Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high effic...
The authors acknowledge Francesco Ruffino for the AFM measurements. This work was funded by the EU F...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...
We report on the fabrication and optical simulation of a plasmonic light-trapping concept for microc...
In this study, we experimentally investigate the light-trapping effect of plasmonic reflection grati...
We experimentally investigate the light-trapping effect of plasmonic reflection grating back contact...
Photocurrent enhancement in thin a-Si:H solar cells due to the plasmonic light trapping is investiga...
Photocurrent enhancement in thin a-Si:H solar cells due to the plasmonic light trapping is investiga...
A doubling of the photocurrent due to light trapping is demonstrated by the combination of silvernan...
The low conversion efficiency of thin-film silicon solar cells currently prevents them from competin...
Most types of thin film solar cells require light management to achieve sufficient light absorptance...
Most types of thin film solar cells require light management to achieve sufficient light absorptance...