尖晶石
析氧
分解水
亚稳态
材料科学
催化作用
密度泛函理论
化学物理
氧气
合理设计
八面体
化学工程
物理化学
纳米技术
计算化学
化学
结晶学
晶体结构
电化学
冶金
工程类
有机化学
光催化
生物化学
电极
作者
Yan Duan,Shengnan Sun,Yuanmiao Sun,Shibo Xi,Xiao Chi,Qinghua Zhang,Xiao Ren,Jingxian Wang,Samuel Jun Hoong Ong,Yonghua Du,Lin Gu,Alexis Grimaud,Zhichuan J. Xu
标识
DOI:10.1002/adma.201807898
摘要
Developing highly active electrocatalysts for oxygen evolution reaction (OER) is critical for the effectiveness of water splitting. Low-cost spinel oxides have attracted increasing interest as alternatives to noble metal-based OER catalysts. A rational design of spinel catalysts can be guided by studying the structural/elemental properties that determine the reaction mechanism and activity. Here, using density functional theory (DFT) calculations, it is found that the relative position of O p-band and MOh (Co and Ni in octahedron) d-band center in ZnCo2- x Nix O4 (x = 0-2) correlates with its stability as well as the possibility for lattice oxygen to participate in OER. Therefore, it is testified by synthesizing ZnCo2- x Nix O4 spinel oxides, investigating their OER performance and surface evolution. Stable ZnCo2- x Nix O4 (x = 0-0.4) follows adsorbate evolving mechanism under OER conditions. Lattice oxygen participates in the OER of metastable ZnCo2- x Nix O4 (x = 0.6, 0.8) which gives rise to continuously formed oxyhydroxide as surface-active species and consequently enhances activity. ZnCo1.2 Ni0.8 O4 exhibits performance superior to the benchmarked IrO2 . This work illuminates the design of highly active metastable spinel electrocatalysts through the prediction of the reaction mechanism and OER activity by determining the relative positions of the O p-band and the MOh d-band center.
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