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Small palladium islands embedded in palladium-tungsten bimetallic nanoparticles form catalytic hotspots for oxygen reduction

机译:嵌入钯-钨双金属纳米颗粒中的小钯岛形成催化还原氧的热点

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The sluggish kinetics of the oxygen reduction reaction at the cathode side of proton exchange membrane fuel cells is one major technical challenge for realizing sustainable solutions for the transportation sector. Finding efficient yet cheap electrocatalysts to speed up this reaction therefore motivates researchers all over the world. Here we demonstrate an efficient synthesis of palladium-tungsten bimetallic nanoparticles supported on ordered mesoporous carbon. Despite a very low percentage of noble metal (palladium: tungsten = 1:8), the hybrid catalyst material exhibits a performance equal to commercial 60% platinum/Vulcan for the oxygen reduction process. The high catalytic efficiency is explained by the formation of small palladium islands embedded at the surface of the palladium-tungsten bimetallic nanoparticles, generating catalytic hotspots. The palladium islands are similar to 1 nm in diameter, and contain 10-20 palladium atoms that are segregated at the surface. Our results may provide insight into the formation, stabilization and performance of bimetallic nanoparticles for catalytic reactions.
机译:质子交换膜燃料电池阴极侧氧还原反应的缓慢动力学是实现运输领域可持续解决方案的一项主要技术挑战。因此,寻找有效而廉价的电催化剂来加速该反应可以激发全世界的研究人员。在这里,我们证明了有序介孔碳负载的钯-钨双金属纳米颗粒的有效合成。尽管贵金属百分比非常低(钯:钨= 1:8),但杂化催化剂材料的性能却相当于氧气还原工艺中商用的60%铂/瓦肯。高催化效率可以通过在钯-钨双金属纳米粒子的表面嵌入小的钯岛来解释,从而产生催化热点。钯岛的直径类似于1 nm,并且包含10-20个钯原子,这些原子在表面隔离。我们的结果可能为洞悉双金属纳米粒子的催化反应提供了见解。

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