In this work, we successfully prepare two-dimensional ultrathin single-crystalline platinum nanodendrites (PtNDs) with precisely controlled generation (size) through a surfactant-directed solution-phase synthesis. The amphiphilic surfactant of C22H45–N+(CH3)2CH2COOH (Br–) acts as the structure-directing template and facet-capping agent simultaneously to kinetically engineer in-the-plane epitaxial growth of Pt nanocrystals along selectively exposed {111} facets into ultrathin PtNDs. A novel formation mechanism defined as crystalline facet-directed step-by-step in-the-plane epitaxial growth, similar to the synthesis of organic dendrimers, is proposed on the basis of the nanostructure and crystalline evolution of PtNDs. The generation growth p...
We present a simple and effective strategy for high yield synthesis of well-dispersed, core-shell Au...
Platinum naturally crystalizes into a three-dimensional crystal due to its highly symmetrical fcc la...
Platinum nanocrystals with a fine control of the crystal domain size in the range 1.0–2.2 nm are pro...
International audience2D ultrathin metal nanostructures are emerging materials displaying distinct p...
A platinum star performance: Quasi-single-crystalline Pt nanoparticles with peculiar morphologies—cu...
Here we report a facile synthesis of Pt-on-Pd bimetallic nanodendrites with a Pd interior and dendri...
Controlling the morphology of nanocrystals (NCs) is of paramount importance for both fundamental stu...
A liquid-phase reducing method of synthesizing Pt nanocrystals was demonstrated, and dendrite-, cube...
Controlled growth of far-from-equilibrium-shaped nanoparticles with size selection is essential for ...
Ultrathin Pt nanostructures exposing controlled crystal facets are highly desirable for their superi...
Uniform platinum nanodendrites have been prepared at a water/oil interface by a facile catalyst-free...
Pt nanostructures are intensively studied for many environmental and energy applications. Their synt...
At the nanometer scale, the physical and chemical properties of materials heavily depend on their si...
Platinum nanocrystals with a fine control of the crystal domain size in the range 1.0–2.2 nm are pro...
A universal approach is presented for high-yield synthesis of Au, Pt, and Pd nanoflowers using the s...
We present a simple and effective strategy for high yield synthesis of well-dispersed, core-shell Au...
Platinum naturally crystalizes into a three-dimensional crystal due to its highly symmetrical fcc la...
Platinum nanocrystals with a fine control of the crystal domain size in the range 1.0–2.2 nm are pro...
International audience2D ultrathin metal nanostructures are emerging materials displaying distinct p...
A platinum star performance: Quasi-single-crystalline Pt nanoparticles with peculiar morphologies—cu...
Here we report a facile synthesis of Pt-on-Pd bimetallic nanodendrites with a Pd interior and dendri...
Controlling the morphology of nanocrystals (NCs) is of paramount importance for both fundamental stu...
A liquid-phase reducing method of synthesizing Pt nanocrystals was demonstrated, and dendrite-, cube...
Controlled growth of far-from-equilibrium-shaped nanoparticles with size selection is essential for ...
Ultrathin Pt nanostructures exposing controlled crystal facets are highly desirable for their superi...
Uniform platinum nanodendrites have been prepared at a water/oil interface by a facile catalyst-free...
Pt nanostructures are intensively studied for many environmental and energy applications. Their synt...
At the nanometer scale, the physical and chemical properties of materials heavily depend on their si...
Platinum nanocrystals with a fine control of the crystal domain size in the range 1.0–2.2 nm are pro...
A universal approach is presented for high-yield synthesis of Au, Pt, and Pd nanoflowers using the s...
We present a simple and effective strategy for high yield synthesis of well-dispersed, core-shell Au...
Platinum naturally crystalizes into a three-dimensional crystal due to its highly symmetrical fcc la...
Platinum nanocrystals with a fine control of the crystal domain size in the range 1.0–2.2 nm are pro...