Issue 2, 2025

An oxycarbide-derived-carbon supported nickel ferrite/copper tungstate ternary composite for enhanced electrocatalytic activity towards the oxygen evolution reaction

Abstract

This work integrates a unique porous carbon with a binary heterostructured NiFe2O4/CuWO4 composite to enhance electrocatalytic activity towards the oxygen evolution reaction. The NiFe2O4/CuWO4 binary heterostructure was prepared through the conventional co-precipitation method. The porous carbon with turbostratic order was obtained by the selective etching of SiO2 nanodomains from preceramic polymer-derived SiOC. Finally, an optimum ternary NiFe2O4/CuWO4/C composite was prepared through hydrothermal treatment. Microstructural findings reveal that NiFe2O4/CuWO4 nanocomposite particulates are distributed homogeneously within the porous carbon matrix. Electrochemical findings reveal that the optimum composite with uniform carbon distribution requires an overpotential of 360 mV to attain a current density of 10 mA cm−2 with the lowest Tafel slope of 43 mV dec−1 as opposed to 450 mV and 55 mV dec−1, respectively, for the composites without carbon. The ternary composite demonstrated a stable potential over a prolonged period of 24 hours with enhanced mass activity. The improved electrocatalytic efficiency of the material is attributed to the presence of graphitic carbon and ample porosity within the additive carbon phase, which enhances the catalyst–electrolyte interaction interface area and electronic conductivity.

Graphical abstract: An oxycarbide-derived-carbon supported nickel ferrite/copper tungstate ternary composite for enhanced electrocatalytic activity towards the oxygen evolution reaction

Supplementary files

Article information

Article type
Paper
Submitted
22 Sep 2024
Accepted
08 Nov 2024
First published
22 Nov 2024

Dalton Trans., 2025,54, 797-810

An oxycarbide-derived-carbon supported nickel ferrite/copper tungstate ternary composite for enhanced electrocatalytic activity towards the oxygen evolution reaction

K. Sanket, U. Kumar, I. Sinha and S. K. Behera, Dalton Trans., 2025, 54, 797 DOI: 10.1039/D4DT02688H

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