DOI: 10.1021/acssuschemeng.6c07284 ISSN: 2168-0485

Graphitic Carbon Nitride (g-C3N4) Interface and Doping Modulation of the ZIF-67@MOG Hybrid: A Novel Strategy for Engineering Bifunctional Catalysis in Durable Zn-Air Batteries

Hong Jin, Wentian Wang, Laihong Zhou, Xiaohui Chen, Naigen Hu, Minhua Jiang, Ping Huang, Ming Li, Yujie Zhu, Jing Wang, Yongfu Tang

Abstract

The development of efficient, stable, and low-cost bifunctional catalysts is a key challenge for the commercial application of zinc-air batteries (ZABs). Herein, a hierarchical-structure engineering strategy is proposed, in which ZIF-67 is in situ doped and anchored onto metal-organic gels (MOG) via interfacial self-assembly to form ZIF-67@MOG. High-temperature decomposition of embedded g-C3N4 generates abundant Co-N4 sites and gas channels, yielding CoNC@NCXS/CN with bifunctional ORR/OER catalytic performance. Electrochemical tests show that the CoNC@NCXS/CN catalyst has an ORR onset potential as high as 0.978 V and a half-wave potential (E1/2) of 0.888 V, both significantly outperforming the commercial Pt/C catalyst. The OER overpotential (at 10 mA cm–2) of CoNC@NCXS/CN is 353 mV, and the bifunctional potential difference ΔE is 0.695 V comparable to Pt/C-RuO2 (0.694 V). DFT calculations further evidence that rich Co-N4 active sites derived from g-C3N4 optimize oxygen intermediate adsorption, lowering free energy barriers from 1.69 to 0.48 eV (U = 1.23 V) and accelerating ORR kinetics. The CoNC@NCXS/CN-based ZAB exhibits remarkable performance with the open-circuit voltage of 1.46 V, the maximum power density of 163.0 mW cm–2, and a high specific capacity of 764.17 mAh g–1. At a current density of 10 mA cm–2, the battery exceptional cycling durability, operating stably for 925 h (2500 chargedischarge cycles) without obvious degradation. This work proposes an effective and generalizable route to high-performance bifunctional oxygen electrocatalysts for energy conversion and storage applications.