电催化剂
双功能
材料科学
析氧
催化作用
过电位
掺杂剂
石墨烯
杂原子
过渡金属
贵金属
无机化学
电化学
金属
化学工程
兴奋剂
纳米技术
电极
化学
物理化学
有机化学
光电子学
冶金
工程类
戒指(化学)
作者
Xue‐Rui Wang,Jieyu Liu,Ziwei Liu,Weichao Wang,Jun Luo,Xiaopeng Han,Xi‐Wen Du,Shi Zhang Qiao,Jing Yang
标识
DOI:10.1002/adma.201800005
摘要
Abstract For many regenerative electrochemical energy‐conversion systems, hybrid electrocatalysts comprising transition metal (TM) oxides and heteroatom‐doped (e.g., nitrogen‐doped) carbonaceous materials are promising bifunctional oxygen reduction reaction/oxygen evolution reaction electrocatalysts, whose enhanced electrocatalytic activities are attributed to the synergistic effect originated from the TM–N–C active sites. However, it is still ambiguous which configuration of nitrogen dopants, either pyridinic or pyrrolic N, when bonded to the TM in oxides, predominately contributes to the synergistic effect. Herein, an innovative strategy based on laser irradiation is described to controllably tune the relative concentrations of pyridinic and pyrrolic nitrogen dopants in the hybrid catalyst, i.e., NiCo 2 O 4 NPs/N‐doped mesoporous graphene. Comparative studies reveal the dominant role of pyridinic‐NCo bonding, instead of pyrrolic‐N bonding, in synergistically promoting reversible oxygen electrocatalysis. Moreover, density functional theory calculations provide deep insights into the corresponding synergistic mechanism. The optimized hybrid, NiCo/NLG‐270, manifests outstanding reversible oxygen electrocatalytic activities, leading to an overpotential different Δ E among the lowest value for highly efficient bifunctional catalysts. In a practical reversible Zn–air battery, NiCo/NLG‐270 exhibits superior charge/discharge performance and long‐term durability compared to the noble metal electrocatalysts.
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