Co<sub>2</sub>P–CoN Double Active Centers Confined in N‐Doped Carbon Nanotube: Heterostructural Engineering for Trifunctional Catalysis toward HER, ORR, OER, and Zn–Air Batteries Driven Water Splitting

Yingying Guo(Zhengzhou University), Pengfei Yuan(Zhengzhou University), Jianan Zhang(Nankai University), Huicong Xia(Zhengzhou University), Fangyi Cheng(Nankai University), Mengfan Zhou(Zhengzhou University), Jin Li(Zhengzhou University), Yueyang Qiao(Zhengzhou University), Shichun Mu(Wuhan University of Technology), Qun Xu(Zhengzhou University)
Advanced Functional Materials
October 23, 2018
Cited by 530

Abstract

Abstract Developing active, robust, and nonprecious electrocatalysts for the hydrogen evolution reaction (HER), oxygen evolution reaction (OER), and oxygen reduction reaction (ORR) is highly crucial and challenging. In this work, a facile strategy is developed for scalable fabrication of dicobalt phosphide (Co 2 P)–cobalt nitride (CoN) core–shell nanoparticles with double active sites encapsulated in nitrogen‐doped carbon nanotubes (Co 2 P/CoN‐in‐NCNTs) by straight forward pyrolysis method. Both density functional theory calculation and experimental results reveal that pyrrole nitrogen coupled with Co 2 P is the most active one for HER, while Co–N–C active sites existing on the interfaces between CoN and N‐doped carbon shells are responsible for the ORR and OER activity in this catalyst. Furthermore, liquid‐state and all‐solid‐state Zn–air batteries are equipped. Co 2 P/CoN‐in‐NCNTs show high power density as high as 194.6 mW cm −2 , high gravimetric energy density of 844.5 W h kg −1 , very low charge–discharge polarization, and excellent reversibility of 96 h at 5 mA cm −2 in liquid system. Moreover, the Co 2 P/CoN‐in‐NCNTs profiles confirm excellent activity for water splitting.


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