金属间化合物
催化作用
材料科学
燃料电池
拉伤
氧还原反应
氧气
氧还原
化学工程
冶金
化学
物理化学
电化学
内科学
工程类
医学
有机化学
生物化学
合金
电极
作者
Longhai Zhang,Yingjie Deng,Jiaxi Zhang,Weiquan Tan,Liming Wang,Li Du,Jiajun Huang,Shijun Liao,Dai Dang,Shuhui Sun,Zhiming Cui
标识
DOI:10.1021/acs.chemmater.4c01968
摘要
Tuning surface strain has been proven to be an efficient strategy for improving the kinetics of the oxygen reduction reaction of Pt–M electrocatalysts (M = non-noble metals). However, it remains a grand challenge to achieve optimal compressive strain, particularly on a platform of low-Pt nanocrystals. Herein, we report a novel approach involving the partial substitution of a Pt site with Ga, resulting in the development of a high-performance L10-type Pt0.8Ga0.2Co intermetallic catalyst. The incorporation of Ga not only fine-tunes the surface strain to approach the optimum region of the theoretical volcano plot but also facilitates the formation of a more stable intermetallic structure dynamically. This enhancement significantly improves long-term electrochemical durability. Pt0.8Ga0.2Co/C exhibits a markedly improved intrinsic activity of 3.39 mA cm–2 and, more importantly, a high mass activity of 0.77 A mgPt–1 at 0.90 V in a fuel cell, surpassing the performance of most previously reported L10 Pt-based intermetallics. Notably, catalytic durability is confirmed through only 28% mass activity loss after 30,000 potential cycles (vs 40% loss for the DOE target). This work paves the way for the development of promising low-Pt electrocatalysts for efficient energy conversion devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI