| Literature DB >> 31967840 |
Xu Li1, Xingxing Li1, Chunxiao Liu1, Hongwen Huang2, Pengfei Gao1, Fawad Ahmad1, Laihao Luo1, Yifan Ye3, Zhigang Geng1, Guoxiong Wang3, Rui Si4, Chao Ma2, Jinlong Yang1, Jie Zeng1.
Abstract
Exploring the high-performance non-Pt electrocatalysts for oxygen reduction reaction (ORR), the bottleneck process in fuel cells, is desirable but challenging. Here, we report the Pd@PdFe core-shell icosahedra as an active and durable electrocatalyst toward ORR in alkaline conditions, which feature a three-atomic-layer tensile-strained PdFe overlayer on Pd icosahedra. Our optimized catalyst shows 2.8-fold enhancement in mass activity and 6.9-fold enhancement in specific activity than commercial Pt/C catalyst toward ORR, representing one of the best non-Pt electrocatalysts. Moreover, the boosted ORR catalysis is strongly supported by the assembled fuel cell performance using Pd@PdFe core-shell icosahedra as the cathode electrocatalyst. The density functional theory calculations reveal that the synergistic coupling of tensile strain and alloy effects enables the optimum binding strength for intermediates, thus causing the maximum activity. The present work suggests the coupling between multiple surface modulations endows larger room for the rational design of remarkable catalysts.Entities:
Keywords: flexible strategies; geometrical effects; ligand effects; oxygen reduction reaction
Year: 2020 PMID: 31967840 DOI: 10.1021/acs.nanolett.9b05024
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189