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Utilization of graphitized and fluorinated carbon as platinum nanoparticles supports for application in proton exchange membrane fuel cell cathodes

机译:石墨化和氟化碳作为铂纳米粒子的载体用于质子交换膜燃料电池阴极

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In this study, Pt nanoparticles are synthesized on partially graphitic carbons, fluorinated or not. They are characterized for their physicochemical properties and oxygen reduction reaction activity, and tested in membrane electrode assemblies in unit proton exchange membrane fuel cell (PEMFC) cathodes; the results are compared with those of a benchmark TEC10EA40E (R) commercial electrocatalyst based on a low surface area highly-graphitized carbon. The home-made membrane electrode assemblies (MEAs) show performances approaching those of the commercial standard. The effect of the surfacic fluorination of the carbon is neither positive nor negative for the "load-cycling" protocol (benchmark MEAs optimized with the commercial electrocatalyst are more durable than non-optimized MEAs prepared with the two home-made electrocatalysts). In opposition, the fluorinated carbon-based electrocatalyst is the more durable in the AST mimicking repeated "start/stop" operation, at least in terms of electrochemical area loses. This demonstrates that carbon corrosion can be (at least partially) mitigated/slowed-down for a partially-fluorinated carbon versus the non-fluorinated substrate, leaving hope to enhance the durability of PEMFC cathodes for automotive applications. This study further demonstrates that the fate of (fluorinated) carbon-supported Pt nanoparticles may differ when the materials are operated in polymer versus liquid electrolyte.
机译:在这项研究中,Pt纳米粒子是在部分石墨碳上合成的,无论是否氟化。它们以其理化性质和氧还原反应活性为特征,并在单位质子交换膜燃料电池(PEMFC)阴极的膜电极组件中进行了测试;结果与基于低表面积高石墨化碳的基准TEC10EA40E(R)商业电催化剂的结果进行了比较。自制的膜电极组件(MEA)的性能接近商业标准。对于“负载循环”方案,碳的表面氟化作用既不是正面也不是负面(用商用电催化剂优化的基准MEA比用两种自制电催化剂制备的非优化MEA更耐用)。相反,至少在电化学面积损失方面,氟化碳基电催化剂在模拟反复“启动/停止”操作的AST中更耐用。这表明与非氟化基材相比,部分氟化碳可以(至少部分)减轻/减缓碳腐蚀,从而有望增强汽车用PEMFC阴极的耐久性。这项研究进一步证明,(氟化)碳负载的Pt纳米粒子的命运可能在聚合物和液体电解质中操作时有所不同。

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