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      Chemical synthesis and application of palladium nanoparticles

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      Journal of Materials Science
      Springer Nature

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          Pd-Pt bimetallic nanodendrites with high activity for oxygen reduction.

          Controlling the morphology of Pt nanostructures can provide a great opportunity to improve their catalytic properties and increase their activity on a mass basis. We synthesized Pd-Pt bimetallic nanodendrites consisting of a dense array of Pt branches on a Pd core by reducing K2PtCl4 with L-ascorbic acid in the presence of uniform Pd nanocrystal seeds in an aqueous solution. The Pt branches supported on faceted Pd nanocrystals exhibited relatively large surface areas and particularly active facets toward the oxygen reduction reaction (ORR), the rate-determining step in a proton-exchange membrane fuel cell. The Pd-Pt nanodendrites were two and a half times more active on the basis of equivalent Pt mass for the ORR than the state-of-the-art Pt/C catalyst and five times more active than the first-generation supportless Pt-black catalyst.
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            A new stereospecific cross-coupling by the palladium-catalyzed reaction of 1-alkenylboranes with 1-alkenyl or 1-alkynyl halides

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              Dendrimer-encapsulated metal nanoparticles: synthesis, characterization, and applications to catalysis.

              This Account reports the synthesis and characterization of dendrimer-encapsulated metal nanoparticles and their applications to catalysis. These materials are prepared by sequestering metal ions within dendrimers followed by chemical reduction to yield the corresponding zerovalent metal nanoparticle. The size of such particles depends on the number of metal ions initially loaded into the dendrimer. Intradendrimer hydrogenation and carbon-carbon coupling reactions in water, organic solvents, biphasic fluorous/organic solvents, and supercritical CO2 are also described.
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                Author and article information

                Journal
                Journal of Materials Science
                J Mater Sci
                Springer Nature
                0022-2461
                1573-4803
                March 2015
                January 6 2015
                March 2015
                : 50
                : 6
                : 2337-2354
                Article
                10.1007/s10853-014-8802-2
                1650704b-7666-48a0-874a-49a6c866aa5c
                © 2015
                History

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