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Towards Engineering Nanoporous Platinum Thin Films for Highly Efficient Catalytic Applications

机译:致力于工程纳米多孔铂薄膜的高效催化应用

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摘要

Porous metals attract significant interest for use in diverse electrochemical catalytic applications. However the fabrication of scalable and controlled porous metal structures on the nanoscale, particularly with highly catalytic pure Pt, still remains a significant challenge. We demonstrate highly engineered nanoporous Pt thin films by the dealloying of a Pt-Si binary alloy system with a predetermined alloy composition. Controlled pore dimensions and nanostructures are obtained by tailoring the Pt-Si alloy composition followed by selective Si etching. As a result, isotropic open nanopores are formed in continuous Pt ligaments and the porosity becomes larger on increasing the Si/Pt atomic ratio, which leads to the formation of a higher surface area and active catalytic sites. The formed nanoporous Pt film shows a 32-times-higher catalytic activity than Pt/C catalysts, with a high current density and low charge-transfer resistance during methanol electro-oxidation. The results reported here open up possibilities to develop high-performance and reliable catalytic electrodes in energy and environmental applications.
机译:多孔金属引起了广泛的兴趣,以用于各种电化学催化应用中。然而,在纳米级上制造可缩放和受控的多孔金属结构,特别是具有高催化纯铂的制造,仍然是一个重大挑战。我们通过将Pt-Si二元合金系统与预定的合金成分脱合金,展示了高度工程化的纳米多孔Pt薄膜。通过定制Pt-Si合金成分,然后进行选择性Si刻蚀,可以控制孔径和纳米结构。结果,在连续的Pt韧带中形成各向同性的开孔纳米孔,并且随着Si / Pt原子比的增加,孔隙率变大,这导致形成更高的表面积和活性催化位点。形成的纳米多孔Pt膜显示出比Pt / C催化剂高32倍的催化活性,在甲醇电氧化过程中具有高电流密度和低电荷转移阻力。此处报道的结果为在能源和环境应用中开发高性能和可靠的催化电极打开了可能性。

著录项

  • 来源
    《Advanced energy materials》 |2011年第6期|1-7|共7页
  • 作者单位

    Department of Mechanical and Industrial Engineering Northeastern University Boston Massachusetts 02115 USA;

    Functional Materials Center Korea Institute of Science and Technology Haweolgok-dong Sungbuk-gu Seoul 131-791 Korea;

    Department of Mechanical and Industrial Engineering Northeastern University Boston Massachusetts 02115 USA;

    Functional Materials Center Korea Institute of Science and Technology Haweolgok-dong Sungbuk-gu Seoul 131-791 Korea;

    Functional Materials Center Korea Institute of Science and Technology Haweolgok-dong Sungbuk-gu Seoul 131-791 Korea;

    Functional Materials Center Korea Institute of Science and Technology Haweolgok-dong Sungbuk-gu Seoul 131-791 Korea;

    Department of Mechanical and Industrial Engineering Northeastern University Boston Massachusetts 02115 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    binary alloys; catalysis; dealloying; electro-oxidation; nanoporous platinum;

    机译:二元合金;催化;脱合金;电氧化;纳米孔铂;

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