Nanoscale heating by optical excitation of plasmonic nanoparticles offers a new perspective of controlling chemical reactions, where heat is not spatially uniform as in conventional macroscopic heating but strong temperature gradients exist around microscopic hot spots. In nanoplasmonics, metal particles act as a nanosource of light, heat, and energetic electrons driven by resonant excitation of their localized surface plasmon resonance. As an example of the coupling reaction of 4-nitrothiophenol into 4,4′-dimercaptoazobenzene, we show that besides the nanoscopic heat distribution at hot spots, the microscopic distribution of heat dictated by the spot size of the light focus also plays a crucial role in the design of plasmonic nanoreactors....
peer reviewedPlasmonic hotspots are regions on the surface of metal nanostructures where light cause...
International audienceRecent years have seen a growing interest in using metal nanostructures to con...
Metal nanoparticles are excellent light absorbers. The absorption processes create highly excited el...
Plasmonic metal nanostructures can concentrate incident optical fields in nanometer-sized volumes, c...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
\u3cp\u3eThe excitation of localized surface plasmon resonances in Au and Ag colloids can be used to...
Nanoplasmonics is a growing field of optical condensed matter science dedicated to optical phenomena...
Light absorption and scattering of plasmonic metal nanoparticles can lead to non-equilibrium charge ...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
The use of nanoplasmonics to control light and heat close to the thermodynamic limit enables excitin...
Thermo-plasmonics: Using metallic nanostructures as nanosources of heat Recent years have seen a gro...
Hot electron photochemistry has made strong claims for improved control of chemical reactions. Here ...
Under illumination at their plasmonic resonance wavelength, gold nanoparticles can absorb incident l...
Plasmonic photocatalysis represents the synergetic union of two active fields of research: plasmonic...
peer reviewedPlasmonic hotspots are regions on the surface of metal nanostructures where light cause...
International audienceRecent years have seen a growing interest in using metal nanostructures to con...
Metal nanoparticles are excellent light absorbers. The absorption processes create highly excited el...
Plasmonic metal nanostructures can concentrate incident optical fields in nanometer-sized volumes, c...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
\u3cp\u3eThe excitation of localized surface plasmon resonances in Au and Ag colloids can be used to...
Nanoplasmonics is a growing field of optical condensed matter science dedicated to optical phenomena...
Light absorption and scattering of plasmonic metal nanoparticles can lead to non-equilibrium charge ...
The excitation of localized surface plasmon resonances in Au and Ag colloids can be used to drive th...
The use of nanoplasmonics to control light and heat close to the thermodynamic limit enables excitin...
Thermo-plasmonics: Using metallic nanostructures as nanosources of heat Recent years have seen a gro...
Hot electron photochemistry has made strong claims for improved control of chemical reactions. Here ...
Under illumination at their plasmonic resonance wavelength, gold nanoparticles can absorb incident l...
Plasmonic photocatalysis represents the synergetic union of two active fields of research: plasmonic...
peer reviewedPlasmonic hotspots are regions on the surface of metal nanostructures where light cause...
International audienceRecent years have seen a growing interest in using metal nanostructures to con...
Metal nanoparticles are excellent light absorbers. The absorption processes create highly excited el...