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High‐Performance Direct Methanol Fuel Cells with Precious‐Metal‐Free Cathode

机译:高性能无贵金属阴极的直接甲醇燃料电池

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摘要

Direct methanol fuel cells (DMFCs) hold great promise for applications ranging from portable power for electronics to transportation. However, apart from the high costs, current Pt‐based cathodes in DMFCs suffer significantly from performance loss due to severe methanol crossover from anode to cathode. The migrated methanol in cathodes tends to contaminate Pt active sites through yielding a mixed potential region resulting from oxygen reduction reaction and methanol oxidation reaction. Therefore, highly methanol‐tolerant cathodes must be developed before DMFC technologies become viable. The newly developed reduced graphene oxide (rGO)‐based Fe‐N‐C cathode exhibits high methanol tolerance and exceeds the performance of current Pt cathodes, as evidenced by both rotating disk electrode and DMFC tests. While the morphology of 2D rGO is largely preserved, the resulting Fe‐N‐rGO catalyst provides a more unique porous structure. DMFC tests with various methanol concentrations are systematically studied using the best performing Fe‐N‐rGO catalyst. At feed concentrations greater than 2.0 m, the obtained DMFC performance from the Fe‐N‐rGO cathode is found to start exceeding that of a Pt/C cathode. This work will open a new avenue to use nonprecious metal cathode for advanced DMFC technologies with increased performance and at significantly reduced cost.
机译:直接甲醇燃料电池(DMFC)在从便携式电子设备到运输的应用中都具有广阔的前景。但是,除了高昂的成本外,由于甲醇从阳极到阴极的严重穿越,DMFC中目前的基于Pt的阴极还会遭受性能损失。阴极中迁移的甲醇倾向于通过产生由氧还原反应和甲醇氧化反应产生的混合电势区域来污染Pt活性位。因此,必须在DMFC技术可行之前开发高度耐甲醇的阴极。新开发的基于还原氧化石墨烯(rGO)的Fe‐N‐C阴极具有很高的甲醇耐受性,并且超过了当前Pt阴极的性能,旋转圆盘电极和DMFC测试都证明了这一点。尽管二维rGO的形态得到了很大程度的保留,但生成的Fe‐N‐rGO催化剂却提供了更加独特的多孔结构。使用性能最佳的Fe‐N‐rGO催化剂系统地研究了各种甲醇浓度的DMFC测试。在进料浓度大于2.0 m时,发现从Fe-N-rGO阴极获得的DMFC性能开始超过Pt / C阴极。这项工作将开辟一条新途径,将非贵金属阴极用于先进的DMFC技术,以提高性能并显着降低成本。

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