The role played by heating in the electrochemical behavior of plasmonic nanostructures under illumination was examined through a combination of theoretical modeling and experimental investigations. A theoretical treatment of heating in plasmonic electrochemical systems was developed, which treats heat flow from arrays of nanoparticles attached to an electrode as a heat source delocalized across the electrode–solution interface. Within this framework, simple analytical expressions for the temperature profile in the vicinity of illuminated electrodes are presented for a 1D model treating heat transfer via conduction. Results from more detailed finite element simulations treating heat transfer via both conduction and convection in realistic ce...
Plasmonic nanostructures support strong electromagnetic field enhancement or optical “hot spots” tha...
Nanoscale heating by optical excitation of plasmonic nanoparticles offers a new perspective of contr...
When an electromagnetic wave illuminates metal nanostructure under right circumstances, it can coupl...
The role played by heating in the electrochemical behavior of plasmonic nanostructures under illumin...
Nonradiative decay of localized surface plasmons results in the production of hot charge carriers an...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
Plasmon-mediated chemical reactions (PMCRs) constitute a vibrant research field, advancing such goal...
Due to plasmon-related local field enhancement, metal nanoparticles can be used in conventional surf...
Light absorption and scattering of plasmonic metal nanoparticles can lead to non-equilibrium charge ...
Plasmonic absorption of light can lead to significant local heating in metallic nanostructures, an e...
Nonradiative decay of plasmons in metallic nanostructures offers unique means for light-to-heat conv...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
Plasmonic metal nanoparticles can efficiently convert the energy of visible photons into the energy ...
Hot carriers generated from the nonradiative decay of localized surface plasmons are capable of driv...
Plasmonic nanostructures support strong electromagnetic field enhancement or optical “hot spots” tha...
Nanoscale heating by optical excitation of plasmonic nanoparticles offers a new perspective of contr...
When an electromagnetic wave illuminates metal nanostructure under right circumstances, it can coupl...
The role played by heating in the electrochemical behavior of plasmonic nanostructures under illumin...
Nonradiative decay of localized surface plasmons results in the production of hot charge carriers an...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
Plasmon-mediated chemical reactions (PMCRs) constitute a vibrant research field, advancing such goal...
Due to plasmon-related local field enhancement, metal nanoparticles can be used in conventional surf...
Light absorption and scattering of plasmonic metal nanoparticles can lead to non-equilibrium charge ...
Plasmonic absorption of light can lead to significant local heating in metallic nanostructures, an e...
Nonradiative decay of plasmons in metallic nanostructures offers unique means for light-to-heat conv...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
Plasmonic metal nanoparticles can efficiently convert the energy of visible photons into the energy ...
Hot carriers generated from the nonradiative decay of localized surface plasmons are capable of driv...
Plasmonic nanostructures support strong electromagnetic field enhancement or optical “hot spots” tha...
Nanoscale heating by optical excitation of plasmonic nanoparticles offers a new perspective of contr...
When an electromagnetic wave illuminates metal nanostructure under right circumstances, it can coupl...