Issue 9, 2025

A ligand-specific bimetallic electrocatalyst for efficient oxygen evolution reaction at higher current density

Abstract

The oxygen evolution reaction (OER) is a critical and bottleneck process in electrochemical energy applications. This study presents a straightforward hydrothermal method for preparing a NiCo bimetallic organic framework (NiCo-MOF) with three unique ligands. The NiCo-trimesic acid-based MOF on carbon cloth (NiCo-t-MOF/CC) can sustain the industrially relevant current density of 100 mA cm−2 for over 62 hours despite the observed gradual increase in potential in 1 M KOH without replacing the electrolyte. The NiCo-t-MOF/CC electrocatalyst achieved a significantly lower overpotential of 440 mV to reach a current density of 100 mA cm−2, outperforming the benchmark RuO2 catalyst, which required 581 mV. A Tafel slope of 83 mV dec−1 at NiCo-t-MOF/CC indicates faster oxygen evolution kinetics than at RuO2/CC (97 mV dec−1). Interestingly, NiCo-t-MOF/CC||Pt–C/CC exhibited a relatively diminished cell voltage of 1.54 V to deliver a current density of 10 mA cm−2, which is close to the thermodynamic water splitting energy of 1.23 V. The performance of NiCo-t-MOF/CC is promising at higher current densities for industrial applications.

Graphical abstract: A ligand-specific bimetallic electrocatalyst for efficient oxygen evolution reaction at higher current density

Supplementary files

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Article information

Article type
Communication
Submitted
26 Нояб. 2024
Accepted
14 Март. 2025
First published
17 Март. 2025

Sustainable Energy Fuels, 2025,9, 2287-2293

A ligand-specific bimetallic electrocatalyst for efficient oxygen evolution reaction at higher current density

V. K., K. G. K., S. R. Ananda, L. K. Sannegowda and S. Aralekallu, Sustainable Energy Fuels, 2025, 9, 2287 DOI: 10.1039/D4SE01656D

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