Center for Individual Nanoparticle Functionality, Department of Physics, Building 312, Technical University of Denmark (DTU), DK-2800 Lyngby, Denmark.
J Am Chem Soc. 2012 Oct 10;134(40):16476-9. doi: 10.1021/ja306348d. Epub 2012 Sep 26.
The activity and stability of Pt(5)Gd for the oxygen reduction reaction (ORR) have been studied, using a combination of electrochemical measurements, angle-resolved X-ray photoelectron spectroscopy (AR-XPS), and density functional theory calculations. Sputter-cleaned, polycrystalline Pt(5)Gd shows a 5-fold increase in ORR activity, relative to pure Pt at 0.9 V, approaching the most active in the literature for catalysts prepared in this way. AR-XPS profiles after electrochemical measurements in 0.1 M HClO(4) show the formation of a thick Pt overlayer on the bulk Pt(5)Gd, and the enhanced ORR activity can be explained by means of compressive strain effects. Furthermore, these novel bimetallic electrocatalysts are highly stable, which, in combination with their enhanced activity, makes them very promising for the development of new cathode catalysts for fuel cells.
已经研究了 Pt(5)Gd 对氧还原反应 (ORR) 的活性和稳定性,采用电化学测量、角分辨 X 射线光电子能谱 (AR-XPS) 和密度泛函理论计算的组合。溅射清洁的多晶 Pt(5)Gd 在 0.9 V 时相对于纯 Pt 的 ORR 活性增加了 5 倍,接近以这种方式制备的催化剂中最活跃的催化剂。在 0.1 M HClO(4) 中的电化学测量后的 AR-XPS 谱表明在大块 Pt(5)Gd 上形成了厚的 Pt 覆盖层,增强的 ORR 活性可以通过压缩应变效应来解释。此外,这些新型双金属电催化剂具有很高的稳定性,这与它们增强的活性相结合,使它们非常有希望开发用于燃料电池的新型阴极催化剂。