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Overgrowth Versus Galvanic Replacement: MechanisticRoles of Pd Seeds during the Deposition of Pd–Pt

机译:过度生长与电动更换:机械Pd种子在Pd–Pt沉积过程中的作用

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摘要

Here, a systematic study of the roles played by Pd seeds during seed-mediated coreduction of Pd–Pt is presented. Either nanoparticles with porous, hollow architectures or concave nanocubes were achieved, depending on whether the synthesis conditions favored galvanic replacement or overgrowth. Prior works have shown that the galvanic replacement reaction between seeds and a precursor can be suppressed by introducing a faster, parallel reaction that removes one of the reagents (e.g., adatom generation in solution rather than surface-catalyzed precursor reduction). Here, we show that the galvanic replacement reaction depends on the size and concentration of the Pd seeds; the former of which can be manipulated during the course of the reaction through the use of a secondary reducing agent. This insight will guide future syntheses of multimetallic nanostructures by seeded methods, allowing for a range of nanocrystals to be precisely engineered for a variety of applications.
机译:在这里,对Pd种子在种子介导的Pd–Pt核心诱导中的作用进行了系统的研究。取决于合成条件是有利于电置换还是过度生长,都可以获得具有多孔,中空结构或凹形纳米立方体的纳米颗粒。先前的工作表明,通过引入去除试剂之一的更快的平行反应可以抑制种子与前体之间的电置换反应(例如,溶液中生成原子,而不是表面催化的前体还原)。在这里,我们表明电流置换反应取决于Pd种子的大小和浓度。前者可以在反应过程中通过使用第二还原剂进行操作。这种见识将指导未来通过种晶方法合成多金属纳米结构,从而能够精确地设计出一系列纳米晶体,以用于各种应用。

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