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Exceptional Oxygen Reduction Reaction Activity and Durability of Platinum–Nickel Nanowires through Synthesis and Post-Treatment Optimization

机译:通过合成和后处理优化,铂-镍纳米线具有出色的氧还原反应活性和耐久性

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For the first time, extended nanostructured catalysts are demonstrated with both high specific activity (>6000 μA cm_(Pt)~(–2) at 0.9 V) and high surface areas (>90 m~(2) g_(Pt)~(–1)). Platinum–nickel (Pt—Ni) nanowires, synthesized by galvanic displacement, have previously produced surface areas in excess of 90 m~(2) g_(Pt)~(–1), a significant breakthrough in and of itself for extended surface catalysts. Unfortunately, these materials were limited in terms of their specific activity and durability upon exposure to relevant electrochemical test conditions. Through a series of optimized postsynthesis steps, significant improvements were made to the activity (3-fold increase in specific activity), durability (21% mass activity loss reduced to 3%), and Ni leaching (reduced from 7 to 0.3%) of the Pt—Ni nanowires. These materials show more than a 10-fold improvement in mass activity compared to that of traditional carbon-supported Pt nanoparticle catalysts and offer significant promise as a new class of electrocatalysts in fuel cell applications.
机译:首次展示了扩展的纳米结构催化剂,具有高比活度(在0.9 V下> 6000μAcm_(Pt)〜(–2))和高表面积(> 90 m〜(2)g_(Pt)〜( –1))。通过电位移合成的铂-镍(Pt-Ni)纳米线先前产生的表面积超过90 m〜(2)g_(Pt)〜(–1),这对于扩展表面催化剂本身是一个重大突破。不幸的是,这些材料在暴露于相关的电化学测试条件下的比活性和耐久性方面受到限制。通过一系列优化的后合成步骤,显着改善了活性(比活性提高了3倍),耐久性(质量活性损失从21%降低到3%)和镍的浸出(从7%降低到0.3%)。 Pt-Ni纳米线。与传统的碳载Pt纳米颗粒催化剂相比,这些材料的质量活性提高了10倍以上,并有望作为燃料电池应用中的新型电催化剂。

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