Optical printing has been proved a versatile and simple method to fabricate arbitrary arrays of colloidal nanoparticles (NPs) on substrates. Here, we show that is also a powerful tool for studying chemical reactions at the single NP level. We demonstrate that 60 nm gold NPs immobilized by optical printing can be used as seeds to obtain larger NPs by plasmon-assisted reduction of aqueous HAuCl4. The final size of each NP is simply controlled by the irradiation time. Moreover, we show conditions for which the growth occurs preferentially in the direction of light polarization, enabling the in situ anisotropic reshaping of the NPs in predetermined orientations
We report on the spectrally controlled photochemical tuning of the size, shape, and localized surfac...
Shaping and positioning noble metal nanostructures are essential processes that still require labori...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...
Optical printing has been proved a versatile and simple method to fabricate arbitrary arrays of coll...
Current colloidal synthesis is able to produce an extensive spectrum of nanoparticles with unique op...
Precise arrangements of plasmonic nanoparticles on substrates are important for designing optoelectr...
We investigate the optical and morphological properties of gold nanoparticles grown by reducing a go...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...
Plasmon induced polymerization can facilitate the site-selectivity and orientation of polymer growth...
Noble metal nanostructures with tunable localized surface plasmon resonance (LSPR) frequency have at...
In this contribution, we report an effective and relatively simple route to grow triangular flat-top...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...
Spatially defined assembly of colloidal metallic nanoparticles is necessary for fabrication of plasm...
We have grown silver prisms and pentagonal bipyramids, induced by plasmon excitation on a colloidal ...
Precise arrangements of plasmonic nanoparticles on substrates are important for designing optoelectr...
We report on the spectrally controlled photochemical tuning of the size, shape, and localized surfac...
Shaping and positioning noble metal nanostructures are essential processes that still require labori...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...
Optical printing has been proved a versatile and simple method to fabricate arbitrary arrays of coll...
Current colloidal synthesis is able to produce an extensive spectrum of nanoparticles with unique op...
Precise arrangements of plasmonic nanoparticles on substrates are important for designing optoelectr...
We investigate the optical and morphological properties of gold nanoparticles grown by reducing a go...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...
Plasmon induced polymerization can facilitate the site-selectivity and orientation of polymer growth...
Noble metal nanostructures with tunable localized surface plasmon resonance (LSPR) frequency have at...
In this contribution, we report an effective and relatively simple route to grow triangular flat-top...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...
Spatially defined assembly of colloidal metallic nanoparticles is necessary for fabrication of plasm...
We have grown silver prisms and pentagonal bipyramids, induced by plasmon excitation on a colloidal ...
Precise arrangements of plasmonic nanoparticles on substrates are important for designing optoelectr...
We report on the spectrally controlled photochemical tuning of the size, shape, and localized surfac...
Shaping and positioning noble metal nanostructures are essential processes that still require labori...
Optical printing holds great potential to enable the use of the vast variety of colloidal nanopartic...