材料科学
纳米点
纳米技术
氧还原
碳纤维
氧气
化学工程
纳米线
兴奋剂
氧还原反应
还原(数学)
电化学
光电子学
复合材料
电极
有机化学
复合数
化学
物理化学
工程类
数学
几何学
作者
Jinshuai Liu,Hao Zhang,Jiashen Meng,Chunhua Han,Fang Liu,Xiong Liu,Peijie Wu,Ziang Liu,Xuanpeng Wang,Liqiang Mai
标识
DOI:10.1021/acsami.0c14112
摘要
N-doped carbon-confined transition metal nanocatalysts display efficient oxygen reduction reaction (ORR) performance comparable to commercial Pt/C electrocatalysts because of their efficient charge transfer from metal atoms to active N sites. However, the sheathed active sites inside the electrocatalysts and relatively large-size confined metal particles greatly restrict their activity improvement. Here, we develop a facile and efficient "MOFs plus ZIFs" synthesis strategy to successfully construct ultrafine sub-5 nm Co nanodots confined into superficial N-doped carbon nanowires (Co@C@NC) via a well-designed synthesis process. The unique synthesis mechanism is based on low-pressure vapor superassembly of thin zeolitic imidazolate framework (ZIF) coatings on metal–organic framework substrates. During the successive pyrolysis, the preferential formation of the robust N-doped carbon shell from the ZIF-67 shell keeps the core morphology without shrinkage and limits the growth of Co nanodots. Benefiting from this architecture with accessible and rich active N sites on the surface, stable carbon confined architecture, and large surface area, the Co@C@NC exhibits excellent ORR performance, catching up to commercial Pt/C. Density functional theory demonstrates that the confined Co nanodots efficiently enhance the charge density of superficial active N sites by interfacial charge transfer, thus accelerating the ORR process.
科研通智能强力驱动
Strongly Powered by AbleSci AI