Hornberger Elisabeth, Klingenhof Malte, Polani Shlomi, Paciok Paul, Kormányos Attila, Chattot Raphaël, MacArthur Katherine E, Wang Xingli, Pan Lujin, Drnec Jakub, Cherevko Serhiy, Heggen Marc, Dunin-Borkowski Rafal E, Strasser Peter
Electrochemical Energy, Catalysis and Material Science Laboratory, Department of Chemistry, Technische Universität Berlin 10623 Berlin Germany
Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Peter Grünberg Institute, Forschungszentrum Jülich GmbH 52425 Jülich Germany
Chem Sci. 2022 Aug 2;13(32):9295-9304. doi: 10.1039/d2sc01585d. eCollection 2022 Aug 17.
Recently proposed bimetallic octahedral Pt-Ni electrocatalysts for the oxygen reduction reaction (ORR) in proton exchange membrane fuel cell (PEMFC) cathodes suffer from particle instabilities in the form of Ni corrosion and shape degradation. Advanced trimetallic Pt-based electrocatalysts have contributed to their catalytic performance and stability. In this work, we propose and analyse a novel quaternary octahedral (oh-)Pt nanoalloy concept with two distinct metals serving as stabilizing surface dopants. An efficient solvothermal one-pot strategy was developed for the preparation of shape-controlled oh-PtNi catalysts doped with Rh and Mo in its surface. The as-prepared quaternary octahedral PtNi(RhMo) catalysts showed exceptionally high ORR performance accompanied by improved activity and shape integrity after stability tests compared to previously reported bi- and tri-metallic systems. Synthesis, performance characteristics and degradation behaviour are investigated targeting deeper understanding for catalyst system improvement strategies. A number of different and on-line analysis techniques were employed to monitor the structural and elemental evolution, including identical location scanning transmission electron microscopy and energy dispersive X-ray analysis (IL-STEM-EDX), wide angle X-ray spectroscopy (WAXS), and on-line scanning flow cell inductively coupled plasma mass spectrometry (SFC-ICP-MS). Our studies show that doping PtNi octahedral catalysts with small amounts of Rh and Mo suppresses detrimental Pt diffusion and thus offers an attractive new family of shaped Pt alloy catalysts for deployment in PEMFC cathode layers.
最近提出的用于质子交换膜燃料电池(PEMFC)阴极氧还原反应(ORR)的双金属八面体Pt-Ni电催化剂存在颗粒不稳定性问题,表现为Ni腐蚀和形状退化。先进的三金属Pt基电催化剂提高了其催化性能和稳定性。在这项工作中,我们提出并分析了一种新型的四元八面体(oh-)Pt纳米合金概念,其中两种不同的金属作为稳定的表面掺杂剂。开发了一种高效的溶剂热一锅法策略,用于制备表面掺杂Rh和Mo的形状可控的oh-PtNi催化剂。与先前报道的双金属和三金属体系相比,所制备的四元八面体PtNi(RhMo)催化剂在稳定性测试后表现出极高的ORR性能,同时活性和形状完整性得到改善。针对催化剂体系改进策略进行了深入理解,研究了合成、性能特征和降解行为。采用了多种不同的在线分析技术来监测结构和元素的演变,包括同位置扫描透射电子显微镜和能量色散X射线分析(IL-STEM-EDX)、广角X射线光谱(WAXS)以及在线扫描流动池电感耦合等离子体质谱(SFC-ICP-MS)。我们的研究表明,用少量Rh和Mo掺杂PtNi八面体催化剂可抑制有害的Pt扩散,从而为用于PEMFC阴极层提供了一个有吸引力的新型成型Pt合金催化剂家族。