Lu, TuoTuoLuJi, ZhengtongZhengtongJiGuo, LiyuanLiyuanGuoXu, NengnengNengnengXuXu, XiaoqianXiaoqianXuSong, ErhongErhongSongKumatani, AkichikaAkichikaKumataniKim, Jong MinJong MinKimSafari, MomoMomoSafariQiao, JinliJinliQiao2026-09-242026-09-2420261616-301Xhttps://imec-publications.be/handle/20.500.12860/60489Developing bifunctional oxygen electrocatalysts with both high intrinsic activity and efficient mass transport remains a key challenge for rechargeable zinc–air batteries (ZABs). Herein, a dual-role Zn engineering strategy is developed to simultaneously regulate the electronic structure and construct hierarchical porosity in Co–N4 carbon nanofibers (Zn/Co–N@CNF). During the electrospinning–pyrolysis process, Zn acts as an electronic regulator that modulates the electronic environment of neighboring Co–N4 sites, inducing electron redistribution and a downward shift of the Co d-band center to −3.43 eV, thereby optimizing the adsorption energetics of oxygen intermediates. Meanwhile, Zn evaporation serves as a dynamic porogen that promotes the generation of highly dispersed Co sites and induces the formation of hierarchical pores, facilitating mass transport and maximizing active-site accessibility. First-principles calculations reveal that the Zn–N4/Co–N4 sites enable optimized oxygen-intermediate adsorption, leading to ultralow theoretical ORR/OER overpotentials of 0.37/0.43 V. Benefiting from this structural–electronic synergy, Zn/Co–N@CNF exhibits excellent bifunctional oxygen electrocatalytic performance with a low ΔE of 755 mV. When employed as an air cathode, the assembled ZAB delivers a high peak power density of 303 mW cm−2 and remarkable cycling stability exceeding 1150 h without an additional carbon diffusion layer. This work establishes a dual-role metal engineering strategy that integrates electronic modulation with hierarchical porosity for constructing high-performance air electrodes for next-generation zinc–air batteries.engDual-Role Zn Engineering Enables Electron Redistribution and Hierarchical Porosity in Co-N4 Carbon Nanofibers for Efficient Zinc-Air BatteriesJournal article10.1002/adfm.77161WOS:0018212674000011616-3028