This paper investigates the improved photo-current response obtained by depositing Al nanoparticles on top of a Si diode. Well defined Al nanodiscs with a diameter and height of 100 nm are produced on the surface of a Si diode using electron-beam lithography, and the change in photo-current generation is characterized. A blue shift of the photo-current response is demonstrated, substantially improving the relation between gains and losses compared to what is typically observed in similar schemes using Ag nanoparticles. Enhanced photo-current response is observed in diodes with Al particles on the surface at all wavelengths larger than ≈465 nm, thereby minimizing the losses in the blue range usually reported with Ag nanoparticles on the surf...
Nanoparticle (NP) arrays of noble metals strongly absorb light in the visible to infrared wavelength...
This article presents an effective structural design arrangement for light trapping in the front sur...
Excitation of surface plasmons on metallic nanoparticles has potential for increasing the absorption...
Localized surface plasmons on metallic nanoparticles can be surprisingly efficient at coupling light...
In this paper low cost and earth abundant Al nanoparticles are simulated and compared with noble met...
Renewable energy sources are a vital topic to the future of growing industrialized nations. Solar ce...
A systematic investigation of the nanoparticle-enhanced light trapping in thin-film silicon solar ce...
Photovoltaics (PV) is fast emerging as an attractive renewable energy technology due to concerns of ...
Metallodielectric nanostructures are enabling a revolution in optics. For centuries optical techniqu...
The intersection of silicon technology with the rapidly growing field of nanoplasmonics, provides a ...
Plasmonic metal nanoparticles supporting localized surface plasmon resonances have attracted a great...
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,...
We have investigated the contribution of localized surface plasmon polaritons (LSPPs) in silver nano...
Plasmons are collective oscillations of the free electrons in a metal or an ionized gas. Plasmons do...
Nanoparticle (NP) arrays of noble metals strongly absorb light in the visible to infrared wavelength...
This article presents an effective structural design arrangement for light trapping in the front sur...
Excitation of surface plasmons on metallic nanoparticles has potential for increasing the absorption...
Localized surface plasmons on metallic nanoparticles can be surprisingly efficient at coupling light...
In this paper low cost and earth abundant Al nanoparticles are simulated and compared with noble met...
Renewable energy sources are a vital topic to the future of growing industrialized nations. Solar ce...
A systematic investigation of the nanoparticle-enhanced light trapping in thin-film silicon solar ce...
Photovoltaics (PV) is fast emerging as an attractive renewable energy technology due to concerns of ...
Metallodielectric nanostructures are enabling a revolution in optics. For centuries optical techniqu...
The intersection of silicon technology with the rapidly growing field of nanoplasmonics, provides a ...
Plasmonic metal nanoparticles supporting localized surface plasmon resonances have attracted a great...
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,...
We have investigated the contribution of localized surface plasmon polaritons (LSPPs) in silver nano...
Plasmons are collective oscillations of the free electrons in a metal or an ionized gas. Plasmons do...
Nanoparticle (NP) arrays of noble metals strongly absorb light in the visible to infrared wavelength...
This article presents an effective structural design arrangement for light trapping in the front sur...
Excitation of surface plasmons on metallic nanoparticles has potential for increasing the absorption...