A Bimetallic Zn/Fe Polyphthalocyanine-Derived Single-Atom Fe-N 4 Catalytic Site:A Superior Trifunctional Catalyst for Overall Water Splitting and Zn-Air Batteries

Developing an efficient single-atom material (SAM) synthesis and exploring the energy-related catalytic reaction are important but still challenging. A polymerization-pyrolysis-evaporation (PPE) strategy was developed to synthesize N-doped porous carbon (NPC) with anchored atomically dispersed Fe-N...

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Veröffentlicht in:Angewandte Chemie International Edition 2018-07, Vol.57 (28), p.8614-8618
Hauptverfasser: Pan, Yuan, Liu, Shoujie, Sun, Kaian, Chen, Xin, Wang, Bin, Wu, Konglin, Cao, Xing, Cheong, Weng-Chon, Shen, Rongan, Han, Aijuan, Chen, Zheng, Zheng, Lirong, Luo, Jun, Lin, Yan, Liu, Yunqi, Wang, Dingsheng, Peng, Qing, Zhang, Qiang, Chen, Chen, Li, Yadong
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Sprache:eng
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Zusammenfassung:Developing an efficient single-atom material (SAM) synthesis and exploring the energy-related catalytic reaction are important but still challenging. A polymerization-pyrolysis-evaporation (PPE) strategy was developed to synthesize N-doped porous carbon (NPC) with anchored atomically dispersed Fe-N catalytic sites. This material was derived from predesigned bimetallic Zn/Fe polyphthalocyanine. Experiments and calculations demonstrate the formed Fe-N site exhibits superior trifunctional electrocatalytic performance for oxygen reduction, oxygen evolution, and hydrogen evolution reactions. In overall water splitting and rechargeable Zn-air battery devices containing the Fe-N SAs/NPC catalyst, it exhibits high efficiency and extraordinary stability. This current PPE method is a general strategy for preparing M SAs/NPC (M=Co, Ni, Mn), bringing new perspectives for designing various SAMs for catalytic application.
ISSN:1433-7851
1521-3773
DOI:10.1002/anie.201804349