Affiliation:
1. Key Laboratory of the Ministry of Education for Advanced Catalysis Materials Department of Chemistry Zhejiang Normal University Jinhua 321004 China
2. College of Chemistry and Materials Engineering Zhejiang A&F University Hangzhou 311300 China
3. Department of Optical Science and Engineering Fudan University Shanghai 200438 China
Abstract
AbstractZn‐Co/air hybrid batteries showcase enhanced energy efficiency, power density, and stability compared to Zn‐air batteries. Nevertheless, it remains challenging to fabricate multi‐functional cathode materials with fast reaction kinetics. Herein the synthesis of a wheat‐like cathode composed of the “cereal‐grains” of densely arranged Co/Co2P heterostructures grown on the “central stems” of P/N codoped carbon nanofibers (denoted as Co/Co2P@PNCF) is presented. The biomimetic nanostructures not only offer abundant exposed active sites to maximize accessibility but also establish efficient multi‐channel networks for both electron transfer and O2/OH− diffusion. Furthermore, the active species of high‐valent Co, resulting from self‐reconstruction of the Co/Co2P heterojunction during the first cycle, create efficient Co2+ ↔ Co4+ redox pairs and provide additional charging‐discharging voltage plateaus. In situ Raman spectroscopy measurement combined with ex situ X‐ray diffraction evidence supports the reversible process of Co3+/4+Ox(OH)y ↔ KxCo2+/3+Oy, leading to improved efficiency and durability of the battery. As a result, Zn‐Co/air hybrid battery based on the Co/Co2P@PNCF exhibits a remarkable power density (321 mW cm−2), ultralong cycle stability (700 h), and a large energy efficiency (62% at 20 mA cm−2).
Funder
National Natural Science Foundation of China