Department of Materials Science and Engineering, McMaster University, Hamilton, Ontario, Canada L8S 4L8.
ACS Nano. 2013 Jul 23;7(7):6103-10. doi: 10.1021/nn4019009. Epub 2013 Jun 27.
Fine-tuning nanocatalysts to enhance their catalytic activity and durability is crucial to commercialize proton exchange membrane fuel cells. The structural ordering and time evolution of ordered Pt3Fe2 intermetallic core-shell nanocatalysts for the oxygen reduction reaction that exhibit increased mass activity (228%) and an enhanced catalytic activity (155%) compared to Pt/C has been quantified using aberration-corrected scanning transmission electron microscopy. These catalysts were found to exhibit a static core-dynamic shell regime wherein, despite treating over 10,000 cycles, there is negligible decrease (9%) in catalytic activity and the ordered Pt3Fe2 core remained virtually intact while the Pt shell suffered a continuous enrichment. The existence of this regime was further confirmed by X-ray diffraction and the compositional analyses using energy-dispersive spectroscopy. With atomic-scale two-dimensional (2-D) surface relaxation mapping, we demonstrate that the Pt atoms on the surface are slightly relaxed with respect to bulk. The cycled nanocatalysts were found to exhibit a greater surface relaxation compared to noncycled catalysts. With 2-D lattice strain mapping, we show that the particle was about -3% strained with respect to pure Pt. While the observed enhancement in their activity is ascribed to such a strained lattice, our findings on the degradation kinetics establish that their extended catalytic durability is attributable to a sustained atomic order.
微调纳米催化剂以提高其催化活性和稳定性对于质子交换膜燃料电池的商业化至关重要。使用相衬校正扫描电子显微镜对有序 Pt3Fe2 金属间核壳纳米催化剂在氧还原反应中的结构有序性和时间演化进行了量化,与 Pt/C 相比,该催化剂表现出更高的质量活性(228%)和增强的催化活性(155%)。这些催化剂表现出静态核-动态壳的状态,尽管处理了超过 10000 个循环,但催化活性几乎没有下降(9%),有序的 Pt3Fe2 核几乎保持完整,而 Pt 壳则不断富集。X 射线衍射和使用能量色散光谱的组成分析进一步证实了这种状态的存在。通过原子尺度二维(2-D)表面弛豫映射,我们证明表面上的 Pt 原子相对于体相略有弛豫。与未经循环的催化剂相比,循环后的纳米催化剂表现出更大的表面弛豫。通过二维晶格应变映射,我们表明该颗粒相对于纯 Pt 约有-3%的应变。虽然观察到的活性增强归因于这种应变晶格,但我们对降解动力学的研究结果表明,其延长的催化耐久性归因于持续的原子有序性。