Department of Chemistry and Chemical Biology , Cornell University , Ithaca , New York 14853 , United States.
Department of Materials Science and Engineering , Cornell University , Ithaca , New York 14853 , United States.
J Am Chem Soc. 2020 Feb 26;142(8):3980-3988. doi: 10.1021/jacs.9b13400. Epub 2020 Feb 14.
Hydrogen fuel cells have emerged as promising, potentially renewable energy-based, energy conversion technologies for powering electric vehicles. However, the sluggish oxygen reduction reaction (ORR) at the cathode has remained a longstanding challenge and requires the design of nonplatinum electrocatalysts with high activity and, ideally, low cost. Here, we present a combinatorial study of Pd-Cu thin-film electrodes with well-defined composition and structures, prepared by magnetron sputtering, as a fast method for assessing the ORR activity of binary alloys. This represents a facile catalyst screening method, using replaceable glassy carbon disk electrodes, which enables the rapid and reliable evaluation of ORR activity using standard rotating disk electrode (RDE) measurements. Among nine Pd-Cu alloys, PdCu was identified as the most promising composition for the ORR and employed as a target for nanoparticle synthesis. The PdCu nanoparticles, supported on carbon, achieved a mass-specific and surface-specific activity, 3 and 2.5 times, respectively, as high as Pd/C in 1 M KOH. PdCu/C further exhibited an impressive durability with only 3 and 13 mV negative shifts in the half-wave potential after 20000 and 100000 potential cycles, respectively. The combinatorial approach guiding the nanoparticle synthesis, described herein, provides an optimized high-throughput screening method for other binary or ternary alloys as fuel cell electrocatalysts.
氢燃料电池作为有前途的、潜在可再生能源的能量转换技术,已经成为电动车辆的动力源。然而,阴极缓慢的氧还原反应(ORR)仍然是一个长期存在的挑战,需要设计具有高活性、理想情况下低成本的非铂电催化剂。在这里,我们通过磁控溅射制备了具有明确组成和结构的 Pd-Cu 薄膜电极,对其进行了组合研究,这是一种快速评估二元合金 ORR 活性的方法。这是一种使用可替换的玻璃碳盘电极的简便催化剂筛选方法,它可以使用标准旋转圆盘电极(RDE)测量快速、可靠地评估 ORR 活性。在九种 Pd-Cu 合金中,PdCu 被确定为最有前途的 ORR 组成,并被用作纳米颗粒合成的目标。负载在碳上的 PdCu 纳米颗粒的质量比活性和比表面积活性分别比 Pd/C 高 3 倍和 2.5 倍,在 1 M KOH 中。PdCu/C 进一步表现出令人印象深刻的耐久性,在 20000 和 100000 个电势循环后,半波电势仅分别负移 3 mV 和 13 mV。本文描述的指导纳米颗粒合成的组合方法为其他二元或三元合金作为燃料电池电催化剂提供了优化的高通量筛选方法。