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New insights into selective heterogeneous nucleation of metal nanoparticles on oxides by microwave-assisted reduction: rapid synthesis of high-activity supported catalysts

机译:微波辅助还原对金属纳米粒子在氧化物上的选择性非均相成核的新见解:高活性负载催化剂的快速合成

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Microwave-based methods are widely employed to synthesize metal nanoparticles on various substrates. However, the detailed mechanism of formation of such hybrids has not been addressed. In this paper, we describe the thermodynamic and kinetic aspects of reduction of metal salts by ethylene glycol under microwave heating conditions. On the basis of this analysis, we identify the temperatures above which the reduction of the metal salt is thermodynamically favorable and temperatures above which the rates of homogeneous nucleation of the metal and the heterogeneous nucleation of the metal on supports are favored. We delineate different conditions which favor the heterogeneous nucleation of the metal on the supports over homogeneous nucleation in the solvent medium based on the dielectric loss parameters of the solvent and the support and the metal/solvent and metal/support interfacial energies. Contrary to current understanding, we show that metal particles can be selectively formed on the substrate even under situations where the temperature of the substrate is lower than that of the surrounding medium. The catalytic activity of the Pt/CeO_2 and Pt/TiO_2 hybrids synthesized by this method for H_2 combustion reaction shows that complete conversion is achieved at temperatures as low as 100 °C with Pt-CeO _2 catalyst and at 50 °C with Pt-TiO_2 catalyst. Our method thus opens up possibilities for rational synthesis of high-activity supported catalysts using a fast microwave-based reduction method.
机译:基于微波的方法被广泛用于在各种基板上合成金属纳米颗粒。然而,尚未解决形成这种杂种的详细机制。在本文中,我们描述了在微波加热条件下乙二醇还原金属盐的热力学和动力学方面。在此分析的基础上,我们确定了高于该温度的金属盐的还原在热力学上是有利的,以及高于该温度的金属在载体上的均相成核速率和金属的异相成核速率均有利的温度。我们基于溶剂和载体以及金属/溶剂和金属/载体界面能的介电损耗参数,描述了不同的条件,这些条件有利于载体上金属的异质成核而不是溶剂介质中的均匀成核。与当前的理解相反,我们表明即使在衬底的温度低于周围介质的温度的情况下,也可以在衬底上选择性地形成金属颗粒。通过该方法合成的Pt / CeO_2和Pt / TiO_2杂化物对H_2燃烧反应的催化活性表明,在低至100°C的温度下使用Pt-CeO _2催化剂和在50°C的Pt-TiO_2催化剂下可实现完全转化。催化剂。因此,我们的方法为使用基于微波的快速还原方法合理合成高活性负载型催化剂提供了可能性。

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