首页> 外文期刊>International journal of hydrogen energy >Preparation of a CO-tolerant PtRu_xSn_y/C electrocatalyst with an optimal Ru/Sn ratio by selective Sn-deposition on the surfaces of Pt and Ru
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Preparation of a CO-tolerant PtRu_xSn_y/C electrocatalyst with an optimal Ru/Sn ratio by selective Sn-deposition on the surfaces of Pt and Ru

机译:通过在Pt和Ru表面进行选择性Sn沉积制备具有最佳Ru / Sn比的耐CO的PtRu_xSn_y / C电催化剂

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摘要

A CO-tolerant PtRu_xSn_y/C electrocatalyst, with an optimal x/y ratio of 0.8/0.2, was prepared by selectively depositing Sn on the metallic surface of PtRu_(0.8)/C for use as the anode in a polymer electrolyte membrane fuel cell. The CO tolerance of the catalyst was greater when Sn was added by chemical vapor deposition (CVD) than by a conventional precipitation method because most of the Sn added by CVD was located in the vicinity of Pt and Ru surfaces, on which CO molecules were strongly adsorbed. Accordingly, the bi-functional mechanism of CO oxidation, which involved the migration of oxygenated species from the Sn to the adsorbed CO, was expected to be promoted to greater extents in the catalysts prepared by Sn-CVD than those prepared by Sn-precipitation. On the other hand, the ligand-effect mechanism of CO oxidation, which was facilitated by the Pt-Ru alloy formation, was not much affected by the added Sn because the Pt-Ru alloy remained unchanged, particularly when y < 0.2. Among PtRu_xSny/C catalysts prepared by Sn-CVD, one prepared by partially substituting Sn for Ru in the PtRu_(1.0)/C catalyst, e.g., PtRu_(0.8)Sn_(0.2)/C, showed higher CO tolerance than one prepared by simply adding Sn to the PtRU_(1.0)/C catalyst, e.g., PtRu_(1.0)Sn_(0.2)/C, which demonstrated the importance of an optimum x/y ratio in the design of the ternary PtRu_xSn_y/C catalysts.
机译:通过选择性地将Sn沉积在PtRu_(0.8)/ C的金属表面上用作聚合物电解质膜燃料电池的阳极,制备了具有最佳x / y比为0.8 / 0.2的耐CO的PtRu_xSn_y / C电催化剂。 。当通过化学气相沉积(CVD)添加Sn时,催化剂的CO耐受性比传统的沉淀方法更高,这是因为通过CVD添加的大多数Sn位于Pt和Ru表面附近,在该表面上CO分子很强吸附。因此,与通过Sn沉淀法制备的催化剂相比,期望在通过Sn-CVD法制备的催化剂中更大程度地促进CO氧化的双功能机理,该双功能机理涉及氧化物种从Sn迁移至吸附的CO。另一方面,由于Pt-Ru合金保持不变,特别是当y <0.2时,由Pt-Ru合金形成促进的CO氧化的配体效应机理不受Pt-Ru合金形成的影响很大。在通过Sn-CVD制备的PtRu_xSny / C催化剂中,用PtRu_(1.0)/ C催化剂部分地用Sn代替Ru制备的一种催化剂,例如PtRu_(0.8)Sn_(0.2)/ C,显示出比通过Sn-CVD制备的催化剂更高的CO耐受性。只需将锡添加到PtRU_(1.0)/ C催化剂(例如PtRu_(1.0)Sn_(0.2)/ C)中,即可证明在设计三元PtRu_xSn_y / C催化剂时最佳x / y比的重要性。

著录项

  • 来源
    《International journal of hydrogen energy》 |2011年第3期|p.1930-1938|共9页
  • 作者单位

    Department of Chemical & Biological Engineering and Institute 0/Chemical Processes, Seoul National University, Seoul 151-744,Republic 0/ Korea;

    Department of Chemical & Biological Engineering and Institute 0/Chemical Processes, Seoul National University, Seoul 151-744,Republic 0/ Korea;

    Institute 0/Advanced Composite Materials, Korea Institute 0/Science and Technology (KIST), 864-9, Dunsan-ri, Bongdong-eup, Wanju-gun,Jeollabukdo, 565-902, Republic 0/Korea;

    Reaction and Separation Materials Research Center, Korea Institute 0/Energy Research, Daejeon 305-343, Republic 0/Korea;

    Department of Chemical & Biological Engineering and Institute 0/Chemical Processes, Seoul National University, Seoul 151-744,Republic 0/ Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    cvd; co tolerance; fuel cell; pt; ru; sn;

    机译:cvd;co容差;燃料电池;pt;ru;sn;

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