Mastering Surface Reconstruction of Metastable Spinel Oxides for Better Water Oxidation
Article 2019 en
Authors
YD
Yan Duan
SS
Shengnan Sun
YS
Yuanmiao Sun
Abstract
1 min read
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 M<sub>Oh</sub> (Co and Ni in octahedron) d-band center in ZnCo<sub>2-</sub> <sub>x</sub> Ni<sub>x</sub> O<sub>4</sub> (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 ZnCo<sub>2-</sub> <sub>x</sub> Ni<sub>x</sub> O<sub>4</sub> spinel oxides, investigating their OER performance and surface evolution. Stable ZnCo<sub>2-</sub> <sub>x</sub> Ni<sub>x</sub> O<sub>4</sub> (x = 0-0.4) follows adsorbate evolving mechanism under OER conditions. Lattice oxygen participates in the OER of metastable ZnCo<sub>2-</sub> <sub>x</sub> Ni<sub>x</sub> O<sub>4</sub> (x = 0.6, 0.8) which gives rise to continuously formed oxyhydroxide as surface-active species and consequently enhances activity. ZnCo<sub>1.2</sub> Ni<sub>0.8</sub> O<sub>4</sub> exhibits performance superior to the benchmarked IrO<sub>2</sub> . 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 M<sub>Oh</sub> d-band center.
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