Department of Chemistry and Chemical Biology , Cornell University , Ithaca , New York 14850 , United States.
J Am Chem Soc. 2018 Jun 13;140(23):7248-7255. doi: 10.1021/jacs.8b03365. Epub 2018 Jun 1.
Design of electrocatalysts with both a high-Pt-utilization efficiency and enhanced electrochemical activity is still the key challenge in the development of proton exchange membrane fuel cells. In the present work, Pd-Fe/C bimetallic nanoparticles (NPs) with an optimal Fe composition and decorated with Pt are introduced as promising catalysts toward the oxygen reduction reaction. These bimetallic nanoparticles have a Pd-Fe@Pd core-shell structure with a surface Pt decoration as established through the use of electron energy loss spectroscopy (EELS) and energy-dispersive X-ray (EDX) spectroscopy. These catalysts exhibit excellent electrocatalytic activity ( E = 0.866 V vs RHE), increasing the mass activity by more than 70% over that of Pt/C in terms of the total mass of Pt and Pd and by 14 times if only Pt is considered. Simple geometrical calculations, based on spherical core-shell models, indicate that Pd-Fe@Pt has a surface Pt decoration rather than a complete Pt monolayer. Such calculations applied to other examples in the literature point out the need for careful and rigorous arguments about claimed "Pt monolayer/multilayers". Such calculations must be based on not only elemental mapping data but also on the Pt/Pd and other metal atomic ratios in the precursors. Our analysis predicts a minimal Pt/Pd atomic ratio in order to achieve a complete Pt monolayer on the surface of the core materials.
设计具有高铂利用率和增强的电化学活性的电催化剂仍然是质子交换膜燃料电池发展的关键挑战。在本工作中,引入了具有最佳 Fe 组成并负载 Pt 的 Pd-Fe/C 双金属纳米粒子 (NPs),作为氧还原反应的有前途的催化剂。这些双金属纳米粒子具有 Pd-Fe@Pd 核壳结构,通过电子能量损失光谱 (EELS) 和能谱 (EDX) 得到证实。这些催化剂表现出优异的电催化活性 (E = 0.866 V vs RHE),与 Pt/C 相比,总 Pt 和 Pd 质量的质量活性提高了 70%以上,如果只考虑 Pt,则提高了 14 倍。基于球形核壳模型的简单几何计算表明,Pd-Fe@Pt 具有表面 Pt 修饰而不是完整的 Pt 单层。这种计算应用于文献中的其他例子表明,需要对所谓的“Pt 单层/多层”进行仔细和严格的论证。这种计算不仅必须基于元素映射数据,还必须基于前驱体中的 Pt/Pd 和其他金属原子比。我们的分析预测了最小的 Pt/Pd 原子比,以在核心材料的表面上实现完整的 Pt 单层。