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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Length-Scale Modulated and Electrocatalytic Activity Enhanced Nanoporous Gold by Doping
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Length-Scale Modulated and Electrocatalytic Activity Enhanced Nanoporous Gold by Doping

机译:掺杂的长度尺度调节和电催化活性增强纳米多孔金

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In the present paper, we have investigated the dealloying of Pt- and/or Pd-doped Al2Au intermetallic compounds and the formation of ultrafine nanoporous Au (np-Au) alloys through a chemical dealloying strategy. The microstructural characterization confirms that these doping atoms enter into crystal lattices of the precursors and then transmit into the as-obtained np-Au, both existing in the form of solid solutions. When dealloying in the 20 wt % NaOH solution is performed, a certain amount of Pt and/or Pd addition shows a superior refining effect and the ligament/channel sizes of the as-doped np-Au can be facilely modulated below 10 nm. When dealloying in the 5 wt % HCl solution is performed, however, the anticoarsening capacity of Pt doping is more remarkable compared with that of Pd doping. In addition, the amount of doping also has an important influence on the ligament resistance to coarsening. Apart from causing the refinement of ligaments/channels, the introduction of Pt and/or Pd into np-Au has generated novel bi- or trimetallic functionalized nanoporous alloys. These as-doped np-Au alloys with an appropriate amount of Pt and/or Pd exhibit excellent electrocatalytic activities toward methanol and formic acid oxidation and will find promising applications in the catalysis-related areas.
机译:在本文中,我们通过化学脱合金策略研究了Pt和/或Pd掺杂的Al2Au金属间化合物的脱合金以及超细纳米多孔Au(np-Au)合金的形成。微观结构表征证实了这些掺杂原子进入前驱体的晶格,然后传输至所获得的np-Au,二者均以固溶体形式存在。当在20wt%的NaOH溶液中进行脱合金时,一定量的Pt和/或Pd添加显示出优异的精制效果,并且可以容易地将掺杂np-Au的韧带/通道尺寸调节至10nm以下。然而,当在5wt%的HCl溶液中进行脱合金时,与Pd掺杂相比,Pt掺杂的抗粗化能力更加显着。另外,掺杂量也对韧带的抗粗化性有重要影响。除了使韧带/通道细化之外,将Pt和/或Pd引入np-Au还产生了新型的双金属或三金属功能化纳米多孔合金。这些具有适量Pt和/或Pd的掺杂np-Au合金对甲醇和甲酸氧化表现出优异的电催化活性,并将在催化相关领域中找到有希望的应用。

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