Performing electron-transfer reactions on metal nanoparticles requires separation of charge carriers at the nanoparticle and their transfer to the reacting molecules. Inducing these reactions using light is challenging due to the exceedingly short lifetimes of energetic charge carriers formed in metal nanoparticles under light illumination. The results described here show that certain conditions must be met to drive these electron-transfer reactions on plasmonic nanoparticles. One critical requirement is that the process of electronic excitation takes place at the nanoparticle/molecule interface. This is accomplished by high plasmonic electric fields at the surface of plasmonic nanoparticles. Furthermore, it is also evident from our study t...
The decay of localized surface plasmons supported by plasmonic metal nanoparticles results in the fo...
Enabled by surface plasmons, noble metal nanostructures can interact with and harvest incident light...
Plasmonic metal nanoparticles can concentrate optical energy and enhance chemical reactions on their...
Plasmonic metal nanoparticles can efficiently convert the energy of visible photons into the energy ...
Light-induced chemical reactions on bulk metal surfaces have been explored for more than 50 years. L...
It is known that plasmon-induced photocatalytic reaction can may occur due to the excitation of elec...
Metal nanoparticles are excellent light absorbers. The absorption processes create highly excited el...
One of the most exciting new developments in the plasmonic nanomaterials field is the discovery of t...
Plasmonic photocatalysis has attracted interest for its potential to generate energy-efficient react...
The activation energy of a catalytic reaction serves not only as a metric of the efficacy of a catal...
Over the past few years, the use of plasmonics to improve the photocatalytic efficiency of titanium ...
Light absorption in plasmonic nanoantennas constitutes an interesting way of enhancing catalytic rea...
Plasmonic hot carriers have been recently identified as key elements for photocatalysis at visible w...
Plasmonic metal nanostructures have been incorporated into semiconductors to enhance the solar-light...
Chemical reactions can be enhanced on surfaces of bimetallic nanoparticles composed of a core plasmo...
The decay of localized surface plasmons supported by plasmonic metal nanoparticles results in the fo...
Enabled by surface plasmons, noble metal nanostructures can interact with and harvest incident light...
Plasmonic metal nanoparticles can concentrate optical energy and enhance chemical reactions on their...
Plasmonic metal nanoparticles can efficiently convert the energy of visible photons into the energy ...
Light-induced chemical reactions on bulk metal surfaces have been explored for more than 50 years. L...
It is known that plasmon-induced photocatalytic reaction can may occur due to the excitation of elec...
Metal nanoparticles are excellent light absorbers. The absorption processes create highly excited el...
One of the most exciting new developments in the plasmonic nanomaterials field is the discovery of t...
Plasmonic photocatalysis has attracted interest for its potential to generate energy-efficient react...
The activation energy of a catalytic reaction serves not only as a metric of the efficacy of a catal...
Over the past few years, the use of plasmonics to improve the photocatalytic efficiency of titanium ...
Light absorption in plasmonic nanoantennas constitutes an interesting way of enhancing catalytic rea...
Plasmonic hot carriers have been recently identified as key elements for photocatalysis at visible w...
Plasmonic metal nanostructures have been incorporated into semiconductors to enhance the solar-light...
Chemical reactions can be enhanced on surfaces of bimetallic nanoparticles composed of a core plasmo...
The decay of localized surface plasmons supported by plasmonic metal nanoparticles results in the fo...
Enabled by surface plasmons, noble metal nanostructures can interact with and harvest incident light...
Plasmonic metal nanoparticles can concentrate optical energy and enhance chemical reactions on their...