石墨烯
铂金
催化作用
材料科学
熔盐
纳米技术
金属
化学工程
氧还原
可扩展性
盐(化学)
无机化学
冶金
化学
电化学
计算机科学
电极
有机化学
数据库
工程类
物理化学
作者
Shahid Zaman,Yaqiong Su,Chung‐Li Dong,Ruijuan Qi,Lei Huang,Yanyang Qin,Yucheng Huang,Fumin Li,Bo You,Wei Guo,Qing Li,Shujiang Ding,Bao Yu Xia
标识
DOI:10.1002/anie.202115835
摘要
Fuel cells are considered as a promising alternative to the existing traditional energy systems towards a sustainable future. Nevertheless, the synthesis of efficient and robust platinum (Pt) based catalysts remains a challenge for practical applications. In this work, we present a simple and scalable molten-salt synthesis method for producing a low-platinum (Pt) nanoalloy implanted in metal-nitrogen-graphene. The as-prepared low-Pt alloyed graphene exhibits a high oxygen reduction activity of 1.29 A mgPt-1 and excellent durability over 30 000 potential cycles. The catalyst nanoarchitecture of graphene encased Pt nanoalloy provides a robust capability against nanoparticle migration and corrosion due to a strong metal-support interaction. Similarly, advanced characterization and theoretical calculations show that the multiple active sites in platinum alloyed graphene synergistically account for the improved oxygen reduction. This work not only provides an efficient and robust low-Pt catalyst but also a facile design idea and scalable preparation technique for integrated catalysts to achieve more profound applications in fuel cells and beyond.
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