Plasmonic metal nanoparticles supporting localized surface plasmon resonances have attracted a great deal of interest in boosting the light absorption in solar cells. Among the various plasmonic materials, the aluminium nanoparticles recently have become a rising star due to their unique ultraviolet plasmonic resonances, low cost, earth-abundance and high compatibility with the complementary metal-oxide semiconductor (CMOS) manufacturing process. Here, we report some key factors that determine the light incoupling of aluminium nanoparticles located on the front side of silicon solar cells. We first numerically study the scattering and absorption properties of the aluminium nanoparticles and the influence of the nanoparticle shape, size, sur...
Significant photocurrent enhancement of 0.4 mA/cm2 has been achieved for industrial textured multicr...
This research investigated the cutting-edge technology nanophotonics to enhance the light absorption...
The behaviour of plasmonic metal nanoparticles (MNPs) placed in contact with a thin dielectric film ...
Plasmonic metal nanoparticles supporting localized surface plasmon resonances have attracted a great...
This article presents an effective structural design arrangement for light trapping in the front sur...
This article presents an effective structural design arrangement for light trapping in the front sur...
Metal nanoparticles have strong optical resonances, which can be used to enhance optical absorption,...
Metal nanoparticles have strong optical resonances, which can be used to enhance optical absorption,...
Metal nanoparticles have strong optical resonances, which can be used to enhance optical absorption,...
The need of renewable energy is increasing as the global energy demand increases concurrently with g...
Light trapping is of critical importance for constructing high efficiency solar cells. In this paper...
In this paper low cost and earth abundant Al nanoparticles are simulated and compared with noble met...
Light trapping is of critical importance for constructing high efficiency solar cells. In this paper...
In this paper low cost and earth abundant Al nanoparticles are simulated and compared with noble met...
Significant photocurrent enhancement of 0.4 mA/cm2 has been achieved for industrial textured multicr...
Significant photocurrent enhancement of 0.4 mA/cm2 has been achieved for industrial textured multicr...
This research investigated the cutting-edge technology nanophotonics to enhance the light absorption...
The behaviour of plasmonic metal nanoparticles (MNPs) placed in contact with a thin dielectric film ...
Plasmonic metal nanoparticles supporting localized surface plasmon resonances have attracted a great...
This article presents an effective structural design arrangement for light trapping in the front sur...
This article presents an effective structural design arrangement for light trapping in the front sur...
Metal nanoparticles have strong optical resonances, which can be used to enhance optical absorption,...
Metal nanoparticles have strong optical resonances, which can be used to enhance optical absorption,...
Metal nanoparticles have strong optical resonances, which can be used to enhance optical absorption,...
The need of renewable energy is increasing as the global energy demand increases concurrently with g...
Light trapping is of critical importance for constructing high efficiency solar cells. In this paper...
In this paper low cost and earth abundant Al nanoparticles are simulated and compared with noble met...
Light trapping is of critical importance for constructing high efficiency solar cells. In this paper...
In this paper low cost and earth abundant Al nanoparticles are simulated and compared with noble met...
Significant photocurrent enhancement of 0.4 mA/cm2 has been achieved for industrial textured multicr...
Significant photocurrent enhancement of 0.4 mA/cm2 has been achieved for industrial textured multicr...
This research investigated the cutting-edge technology nanophotonics to enhance the light absorption...
The behaviour of plasmonic metal nanoparticles (MNPs) placed in contact with a thin dielectric film ...