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Fast Cryomediated Dynamic Equilibrium Hydrolysates towards Grain Boundary-Enriched Platinum Scaffolds for Efficient Methanol Oxidation

机译:快速富集晶界富集铂支架的低温介导的动态平衡水解产物可有效氧化甲醇。

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摘要

Although platinum nanocrystals have been considered as potential electrocatalysts for methanol oxidation reaction (MOR) in fuel cells, the large-scale practical implementation has been stagnated by their limited abundance, easy poisoning, and low durability. Here, grain boundary-enriched platinum (GB-Pt) scaffolds are produced in large scale via facilely reducing fast cryomediated dynamic equilibrium hydrolysates of platinum salts. Such plentiful platinum grain boundaries are originated from the fast fusion of short platinum nanowires during reduction of the individually and homogeneously dispersed platinum intermediates. These grain boundaries can provide abundant active sites to efficiently catalyze MOR and meanwhile enable to oxidize the adsorbed poisonous CO during the electrocatalytic process. As a consequence, the as-synthesized GB-Pt scaffolds exhibit an impressively high mass activity of 1027.1 mA mg for MOR, much higher than that of commercial Pt/C (345.2 mA mg ), as well as good stability up to 5000 cycles. We are confident that this synthetic protocol can be further extended to synthesize various grain boundary-enriched metal scaffolds with broad applications in catalysis.
机译:尽管铂纳米晶体已被认为是燃料电池中甲醇氧化反应(MOR)的潜在电催化剂,但由于其丰度有限,易中毒和耐用性低而使大规模的实际应用停滞不前。在此,通过容易地还原铂盐的快速冷冻介导的动态平衡水解产物,大量生产了晶界富集的铂(GB-Pt)支架。这种丰富的铂晶界源自短的铂纳米线在单个和均匀分散的铂中间体还原过程中的快速融合。这些晶界可以提供丰富的活性位点,以有效地催化MOR,同时在电催化过程中可以氧化吸附的有毒CO。结果,合成后的GB-Pt支架对MOR表现出令人印象深刻的高质量活性1027.1μmA·mg,远高于商业Pt / C(345.2μmA·mg),并且在高达5000次循环后仍具有良好的稳定性。我们相信,该合成方案可以进一步扩展以合成各种在催化中具有广泛应用的富晶界富集的金属支架。

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