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Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting
Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting
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Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting
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Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting
Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting

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Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting
Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting
Journal Article

Combining Porosification and Doping Strategy to Enhance the Catalytic Activity of NiCo.sub.2O.sub.4-Based Electrocatalysts for Efficient Water Splitting

2025
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Overview
Low-cost electrocatalysts with high catalytic activity for hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) are essential for electrochemical water splitting to produce hydrogen. In this study, we report the combination of porosification and doping strategy to improve the catalytic activity of NiCo.sub.2O.sub.4-based electrocatalysts for HER and OER. A facile porosification method was proposed and demonstrated by annealing the NiCo.sub.2O.sub.4 nanosheets in a reductive atmosphere to synthesize porous NiCo.sub.2O.sub.4 nanosheets. In order to further improve the catalytic activity for HER and OER, the porous NiCo.sub.2O.sub.4 nanosheets were doped with P and Fe, respectively, which tailored the electronic structure of the electrocatalysts, improved the intrinsic catalytic activity, and increased the number of active sites. HER or OER experiments were performed on the porous P-NiCo.sub.2O.sub.4 nanosheets or the porous NiCo.sub.1.5Fe.sub.0.5O.sub.4 nanosheets, which required an overpotential of 160 mV or 222 mV to deliver a current density of 10 mA/cm.sup.2, respectively. Furthermore, overall water splitting was achieved using the porous P-NiCo.sub.2O.sub.4 nanosheet cathode and the porous NiCo.sub.2-xFe.sub.xO.sub.4 nanosheet anode with a Faraday Efficiency of 98.22%. The present paper proposes a strategy to fabricate doped porous electrocatalysts with a view to providing insights for the design and synthesis of efficient and inexpensive electrocatalysts for water splitting.
Publisher
Springer