| Literature DB >> 32329197 |
Hao Luo1,2, Wen-Jie Jiang2, Shuai Niu2,3, Xing Zhang2,3, Yun Zhang2, Lu-Pan Yuan2,3, Chuanxin He1, Jin-Song Hu2,3.
Abstract
Highly efficient and stable bifunctional electrocatalysts for oxygen reduction and evolution are essential for aqueous rechargeable Zn-air batteries, which require highly active sites as well as delicate structural design for increasing effective active sites and facilitating mass/electron transfer. Herein, a scalable and facile self-catalyzed growth strategy is developed to integrate highly active Co-N-C sites with 3D brush-like nanostructure, achieving Co-N-C nanobrushes with Co,N-codoped carbon nanotube branches grown on Co,N-codoped nanoparticle assembled nanowire backbones. Systematic investigations suggest that nanobrushes deliver significantly improved electrocatalytic activity compared with nanowire or nanotube counterparts and the longer nanotube branches give the better performance. Benefiting from the increase of accessible highly active sites and enhanced mass transfer and electron transportation, the present Co-N-C nanobrush exhibits superior electrocatalytic activity and durability when used as a bifunctional oxygen catalyst. It enables a rechargeable Zn-air battery with a high peak power density of 246 mW cm-2 and excellent cycling stability. These results suggest that the reported synthetic strategy may open up possibilities for exploring efficient electrocatalysts for diverse applications.Entities:
Keywords: M-N-C; Zn-air battery; nanostructures; oxygen evolution; oxygen reduction
Year: 2020 PMID: 32329197 DOI: 10.1002/smll.202001171
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281