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Catalytic performance comparison of shape-dependent nanocrystals and oriented ultra thin films of Pt4Cu alloy in the formic acid oxidation process.

机译:Pt4Cu合金中依赖形状的纳米晶体和取向超薄膜在甲酸氧化过程中的催化性能比较。

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摘要

Research efforts continue to focus on the development of viable and cost effective fuel cell catalysts with minimized Pt content. This work presents a comparison study between Pt4Cu nanocubes and nano-octahedra as well as Pt4Cu (100) and (111) thin films used as catalysts for formic acid oxidation. The paper introduces a novel synthetic method for Pt 4Cu nano-octahedra and it also demonstrates for the first time the use of surface limited redox replacement of Pb underpotentially deposited layer for epitaxial growth of thin alloy films. Overall, the nanoparticle catalysts exhibit superior performance in terms of durability when compared to their thin film counterparts, but feature nearly five-fold lower activity. As a result it was determined that both types of catalysts accumulate nearly equal charge density in their lifespan. In terms of crystallographic orientation, the results indicate that the nanocubes and Pt4Cu (100) thin films outperform the nano-octahedra and Pt4Cu (111) thin films in terms of durability but feature equal to slightly lower activity. This significant difference in durability of catalysts with different crystallographic orientation is attributed to interplay of passivation (from CO poisoning and Pt oxidation) and dissolution of Pt. When compared to pure Pt catalysts (nanoparticles and thin films), all of the Pt4Cu catalysts in this work exhibit superior performance towards formic acid oxidation in terms of activity and durability.
机译:研究工作继续集中在开发具有最小Pt含量的可行且具有成本效益的燃料电池催化剂上。这项工作提出了Pt4Cu纳米立方体和纳米八面体以及用作甲酸氧化催化剂的Pt4Cu(100)和(111)薄膜之间的比较研究。本文介绍了一种新颖的Pt 4Cu纳米八面体的合成方法,并且还首次证明了利用表面有限氧化还原置换Pb电位不足沉积层进行合金薄膜的外延生长。总体而言,与薄膜同类产品相比,纳米颗粒催化剂在耐久性方面表现出卓越的性能,但活性却降低了近五倍。结果确定了两种催化剂在它们的寿命中积累了几乎相等的电荷密度。就晶体取向而言,结果表明,纳米立方体和Pt4Cu(100)薄膜在耐久性方面优于纳米八面体和Pt4Cu(111)薄膜,但活性略低。具有不同晶体学取向的催化剂在耐久性上的显着差异归因于钝化(来自CO中毒和Pt氧化)和Pt溶解的相互作用。与纯Pt催化剂(纳米颗粒和薄膜)相比,这项工作中的所有Pt4Cu催化剂在活性和耐久性方面均表现出优异的抗甲酸氧化性能。

著录项

  • 作者

    Bromberg, Lori Ana.;

  • 作者单位

    State University of New York at Binghamton.;

  • 授予单位 State University of New York at Binghamton.;
  • 学科 Inorganic chemistry.;Nanoscience.;Nanotechnology.
  • 学位 M.S.
  • 年度 2013
  • 页码 57 p.
  • 总页数 57
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水产、渔业;
  • 关键词

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