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Synthesis and catalytic properties of Au-Pd nanoflowers

机译:金钯纳米花的合成及催化性能

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Reduction of Pd ions by hydroquinone in the presence of gold nanoparticles and polyvinylpyrrolidone resulted in the formation of nanoflowers with a Au core and Pd petals. Addition of HCl to the synthesis halted the reduction by hydroquinone and enabled the acquisition of snapshots of the nanoflowers at different stages of growth. TEM images of the reaction after 10 s show that the nanoflower morphology resulted from the homogeneous nucleation of Pd clusters in solution and their subsequent attachment to gold seeds coated with a thin (0.8 ± 0.1 nm) shell of Pd. UV-visible spectra also indicate Pd clusters formed in the early stages of the reaction and disappeared as the nanoflowers grew. The speed at which this reaction can be halted is useful not only for producing a variety of bimetallic nanostructures with precisely controlled dimensions and morphologies but also for understanding the growth mechanism of these structures. The ability of the AuPd core-shell structure to catalyze the Suzuki coupling reaction of iodobenzene to phenylboronic acid was probed and compared against the activity of Pd nanocubes and thin-shelled AuPd core-shell nanoparticles. The results of this study suggest that Suzuki coupling was not affected by the surface structure or subsurface composition of the nanoparticles, but instead was primarily catalyzed by molecular Pd species that leached from the nanostructures.
机译:在金纳米颗粒和聚乙烯吡咯烷酮的存在下,氢醌还原Pd离子导致形成具有Au核和Pd花瓣的纳米花。在合成过程中加入HCl可以阻止氢醌的还原反应,并可以在不同的生长阶段获得纳米花的快照。 10 s后反应的TEM图像显示,纳米花的形貌是由溶液中Pd团簇的均匀成核和随后附着在涂有薄(0.8±0.1 nm)Pd壳的金种子上引起的。紫外可见光谱还表明,Pd团簇在反应的早期形成,并随着纳米花的生长而消失。停止该反应的速度不仅可用于生产具有精确控制的尺寸和形态的多种双金属纳米结构,而且可用于理解这些结构的生长机理。探讨了AuPd核壳结构催化碘代苯与苯基硼酸的Suzuki偶联反应的能力,并与Pd纳米立方体和薄壳AuPd核壳纳米颗粒的活性进行了比较。这项研究的结果表明,Suzuki偶联不受纳米颗粒的表面结构或亚表面组成的影响,而是主要由从纳米结构中浸出的分子Pd物种催化。

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