Angewandte Chemie - International Edition, volume 60, issue 6, pages 3212-3221
Atomic‐Level Modulation of Electronic Density at Cobalt Single‐Atom Sites Derived from Metal–Organic Frameworks: Enhanced Oxygen Reduction Performance
Yuanjun Chen
1
,
Rui Gao
2
,
Shufang Ji
1
,
H Li
3
,
Kun Tang
4
,
Peng Jiang
1
,
Haibo Hu
4
,
Zedong Zhang
1
,
Haigang Hao
2
,
Qingyun Qu
1
,
Xiao Liang
1
,
Wenxing Chen
5
,
Juncai Dong
3
,
Dingsheng Wang
1
,
Yadong Li
1
Publication type: Journal Article
Publication date: 2020-12-10
scimago Q1
SJR: 5.300
CiteScore: 26.6
Impact factor: 16.1
ISSN: 14337851, 15213773
PubMed ID:
33124719
General Chemistry
Catalysis
Abstract
Demonstrated here is the correlation between atomic configuration induced electronic density of single-atom Co active sites and oxygen reduction reaction (ORR) performance by combining density-functional theory (DFT) calculations and electrochemical analysis. Guided by DFT calculations, a MOF-derived Co single-atom catalyst with the optimal Co1 -N3 PS active moiety incorporated in a hollow carbon polyhedron (Co1 -N3 PS/HC) was designed and synthesized. Co1 -N3 PS/HC exhibits outstanding alkaline ORR activity with a half-wave potential of 0.920 V and superior ORR kinetics with record-level kinetic current density and an ultralow Tafel slope of 31 mV dec-1 , exceeding that of Pt/C and almost all non-precious ORR electrocatalysts. In acidic media the ORR kinetics of Co1 -N3 PS/HC still surpasses that of Pt/C. This work offers atomic-level insight into the relationship between electronic density of the active site and catalytic properties, promoting rational design of efficient catalysts.
Found
Are you a researcher?
Create a profile to get free access to personal recommendations for colleagues and new articles.