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February 2, 202610 citationsOpen Access

Morphology-Driven Enhancement of Alkaline OER Performance in Spinel NiCo2O4 Nanosheet Electrodes

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AAAbu Talha Aqueel AhmedAAAbu Saad AnsariSCSangeun Cho

Key Points

  • To enhance the catalytic performance of NiCo2O4 nanosheet electrodes for the oxygen evolution reaction (OER) in alkaline water electrolysis through morphology engineering.
  • Synthesis of NiCo2O4 catalysts with different morphologies using hexamethylenetetramine and urea as precipitating agents.
  • Characterization of OER performance using metrics like overpotential, Tafel slope, and turnover frequency.
  • Evaluation of durability and catalytic integrity after prolonged use and surface transformations.
  • NCO-H catalyst achieved an overpotential of 259 mV and a Tafel slope of 84 mV dec–1, outperforming NCO-U.
  • The NCO-H exhibited an ultrathin nanosheet network that facilitated enhanced active site accessibility and shorter ion diffusion pathways.
  • Durability tests showed minimal degradation after 50 hours of operation and retention of catalytic properties.

Abstract

The oxygen evolution reaction (OER) is a critical anodic process in alkaline water electrolysis, and its catalytic performance can be effectively regulated through rational morphology engineering that governs active-site exposure, mass transport, and charge-transfer kinetics. Herein, we report a precursor-controlled synthesis of spinel NiCo2O4 (NCO) catalysts with tunable two-dimensional architectures for efficient alkaline OER. By employing hexamethylenetetramine (H) and urea (U) as precipitating agents, the NiCo2O4 catalysts with distinctly different nanosheet morphologies were directly grown on nickel foam. The NCO-H catalyst exhibits substantially enhanced OER activity by achieving lower overpotential of 259 mV, a smaller Tafel slope of 84 mV dec–1, and higher turnover frequency compared to NCO-U catalyst. The superior OER performance is attributed to an ultrathin, highly interconnected nanosheet network that provides abundant accessible active sites, shortened ion-diffusion pathways, and accelerated interfacial charge transfer. Moreover, the optimized electrode demonstrates excellent durability (50 h) with negligible potential degradation after the partial surface transformation into an oxyhydroxide-rich active phase, while post-stability polarization and impedance analyses confirm the preservation of catalytic integrity. These findings highlight precursor-regulated morphology engineering as an effective strategy for optimizing the electrocatalytic performance of spinel oxides and establish NiCo2O4 as a robust, earth-abundant OER catalyst for alkaline water-splitting applications.

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Cite This Study

Ahmed et al. (2026) studied this question.

synapsesocial.com/papers/69810006c1c9540dea812fa8https://doi.org/10.3390/ijms27031444
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