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Durability of different carbon nanomaterial supports with PtRu catalyst in a direct methanol fuel cell

机译:直接甲醇燃料电池中含PtRu催化剂的不同碳纳米材料载体的耐久性

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摘要

PtRu catalysts with similar particle size and composition were deposited on three different carbon supports: Vulcan, graphitized carbon nanofibers (GNF) and few-walled carbon nanotubes (FWCNT) and their performance for methanol oxidation was studied in an electrochemical cell and in a single cell DMFC. The electrochemical results indicate that with PtRu/GNF and PtRu/FWCNT higher current densities are obtained and oxidation intermediates deactivate the surface less compared to the same catalyst on Vulcan support. Conversely, PtRu/Vulcan provided the highest open circuit voltage OCV and current densities in DMFC experiments due to a well-optimized electrode layer structure. Because stability is a key requirement for fuel cell commercialization, 6-day-long fuel cell stability tests were carried out, showing that PtRu/Vulcan degraded significantly. This was due to the collapse of the secondary structure of the electrode layer revealed by post characterization of the membrane electrode assembly (MEA) with SEM and TEM. PtRu/GNF exhibited slightly poorer initial performance but better stability because the structure of the anode layer was maintained. PtRu/FWCNT showed the worst initial performance and long-term stability. The good stability of non-optimized PtRu/GNF MEAs shows the potential of these novel nanocarbon supported catalysts as stable fuel cell components after proper MEA optimization.
机译:将具有相似粒度和组成的PtRu催化剂沉积在三种不同的碳载体上:Vulcan,石墨化碳纳米纤维(GNF)和少壁碳纳米管(FWCNT),并在电化学电池和单电池中研究了它们的甲醇氧化性能。 DMFC。电化学结果表明,与Vulcan载体上的相同催化剂相比,使用PtRu / GNF和PtRu / FWCNT可获得更高的电流密度,并且氧化中间体使表面失活的程度较小。相反,由于电极层结构的优化,PtRu / Vulcan在DMFC实验中提供了最高的开路电压OCV和电流密度。由于稳定性是燃料电池商业化的关键要求,因此进行了为期6天的燃料电池稳定性测试,结果表明PtRu / Vulcan明显降解。这是由于通过使用SEM和TEM对膜电极组件(MEA)进行后期表征而揭示的电极层二级结构的崩溃。由于保持了阳极层的结构,PtRu / GNF的初始性能稍差,但稳定性更好。 PtRu / FWCNT表现出最差的初始性能和长期稳定性。未优化的PtRu / GNF MEA的良好稳定性表明,经过适当的MEA优化后,这些新型纳米碳载体催化剂可作为稳定的燃料电池组件。

著录项

  • 来源
    《International journal of hydrogen energy》 |2012年第4期|p.3415-3424|共10页
  • 作者单位

    Research Group of Fuel Cells,Department of Chemistry,Aalto University,P.O.Box 16100,00076 Aalto,Finland;

    Nanomaterials Group,Department of Applied Physics,Aalto University,P.O.Box 16100,00076 Aalto,Finland;

    Nanomaterials Group,Department of Applied Physics,Aalto University,P.O.Box 16100,00076 Aalto,Finland;

    Nanomaterials Group,Department of Applied Physics,Aalto University,P.O.Box 16100,00076 Aalto,Finland;

    Nanomaterials Group,Department of Applied Physics,Aalto University,P.O.Box 16100,00076 Aalto,Finland;

    Nanomaterials Group,Department of Applied Physics,Aalto University,P.O.Box 16100,00076 Aalto,Finland,CIDETEC-IK4(Centre for Electrochemical Technologies),Paseo Uxramon 196,20009 Donostia-San Sebastian,Spain;

    Research Group of Fuel Cells,Department of Chemistry,Aalto University,P.O.Box 16100,00076 Aalto,Finland;

  • 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

    carbon nanotubes; carbon nanofibers; methanol oxidation; direct methanol fuel cell (DMFC);

    机译:碳纳米管;碳纳米纤维;甲醇氧化;直接甲醇燃料电池(DMFC);
  • 入库时间 2022-08-18 00:28:18

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