Issue 36, 2024

Zn-facilitated surface reconstruction of Ni-MOF for an enhanced oxygen evolution reaction

Abstract

Facilitating the surface reconstruction of pre-catalysts has been considered an effective strategy for constructing low-cost and highly efficient OER electrocatalysts. Metal doping is a feasible way to activate the surface reconstruction, thus enhancing the OER performance. Herein, we report a facile hydrothermal method to synthesize a series of Zn-doped Ni-MOF on nickel foam (NiZn-MOF/NF) as promising pre-catalysts toward the oxygen evolution reaction (OER). The Zn leaching of NiZn-MOF/NF can promote the surface self-reconstruction of NiZn-MOF/NF into oxygen-vacancy-rich NiOOH after electrochemical activation. Benefiting from the optimized electronic structure, abundant defects, more accessible active sites, and enhanced electrical conductivity, the reconstructed metal oxyhydroxide hybrids exhibit better electrocatalytic activity than the catalysts transformed from Ni-MOF/NF without Zn doping. The optimized NiZn-MOF/NF-OH as an OER catalyst has an overpotential of 336 mV at 100 mA cm−2, and a Tafel slope of 65.9 mV dec−1, as well as stability over 12 h. This work reveals that Zn cation-doping/leaching induces the surface reconstruction of pre-catalysts for enhanced oxygen catalytic activity, which provides a new approach for the development of advanced electrocatalysts.

Graphical abstract: Zn-facilitated surface reconstruction of Ni-MOF for an enhanced oxygen evolution reaction

Supplementary files

Article information

Article type
Paper
Submitted
15 Jul 2024
Accepted
20 Aug 2024
First published
22 Aug 2024

Dalton Trans., 2024,53, 15093-15100

Zn-facilitated surface reconstruction of Ni-MOF for an enhanced oxygen evolution reaction

F. Wu, Y. Jiao, J. Ge, Y. Zhu, C. Feng, Z. Wu and Q. Li, Dalton Trans., 2024, 53, 15093 DOI: 10.1039/D4DT02040E

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