双功能
电催化剂
材料科学
析氧
吸附
化学工程
氧气
无定形固体
过渡金属
纳米技术
金属
碳纤维
相(物质)
表面工程
双功能催化剂
无机化学
氧还原
水溶液
氧化还原
催化作用
氧还原反应
制作
电化学
作者
Wenwen Chen,Wenyan Cheng,Kuixing Ding,Liming Zhao,Xingping Ge,Jing Zhang,Huanan Yu,Jingji Zhang,Yi Yang,Hongshuai Hou,Jiugang Hu,Xiaobo Ji
标识
DOI:10.1002/adfm.202517329
摘要
Abstract Transition metal selenides (TMSes) have garnered significant attention as bifunctional electrocatalysts for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) in rechargeable zinc‐air batteries (ZABs). However, their catalytic performance and durability remain constrained by the low‐activity interfacial environments. Herein, synergistic pyridinic‐N‐Cu‐Se interfacial configurations are designed and constructed on 3D nitrogen‐doped carbon nanosheets (Cu 2‐x Se@3D‐NCNs) via a molten salt‐assisted strategy. Theoretical simulations and in situ spectroscopic analyses reveal that the pyridinic‐N‐Cu‐Se interface induces a significant downshift of the Cu d ‐band center, optimizes adsorption of oxygen species, and drives dynamic surface reconstruction into amorphous oxyhydroxide species under OER conditions. These oxyhydroxides serve as the true active phase for OER, while coordination‐driven electronic modulation of Cu sites facilitates adsorption of oxygen intermediates during ORR, thereby enhancing reaction kinetics. As a result, Cu 2‐x Se@3D‐NCNs exhibits excellent bifunctional activity, featuring a low potential gap (Δ E = 0.76 V), a high peak power density (103.8 mW cm −2 ), and extended cycling life (750 cycles) in aqueous ZABs. Furthermore, the assembled flexible ZABs demonstrate stable performance under mechanical deformation, highlighting its potential for next‐generation wearable energy storage systems. This work underscores the critical role of interfacial coordination engineering in the development of durable and efficient bifunctional electrocatalysts.
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