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March 29, 2026Electrochimica Acta0 citationsOpen Access

Electrooxidation of monosaccharides on nickel: A microkinetic study of the electrode site heterogeneity

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XSXin ShenCentre National de la Recherche ScientifiqueAMAlejandra Medrano-BandaCentre National de la Recherche ScientifiqueESElena R. SavinovaCentre National de la Recherche Scientifique

Key Points

  • This research aims to understand the electrooxidation mechanisms of monosaccharides on nickel-based catalysts.
  • Conducted cyclic voltammetry on Ni electrodeposited on glassy carbon in NaOH.
  • Investigated monosaccharides with 3 to 6 carbon atoms at concentrations of 1–5 mM.
  • Developed a two-site microkinetic model accounting for active site heterogeneity.
  • Oxidation onset occurs about 250 mV below the Ni(OH)2/NiOOH peak.
  • The two-site microkinetic model captures the voltammetric response of glucose, fructose, and erythrose.
  • The Eley–Rideal pathway dominates in the low-potential interval.

Abstract

The electrochemical oxidation of monosaccharides on nickel-based catalysts is a promising route for sustainable energy conversion and biomass valorization into added-value products. Although participation of the Ni(OH) 2 /NiOOH redox couple in the organics oxidation is well documented, the nature of the active sites and the underlying mechanisms of monosaccharide electrooxidation remain insufficiently understood. Here, we investigate the electrooxidation of monosaccharides containing 3, 4, 5, and 6 carbon atoms by cyclic voltammetry on Ni electrodeposited on glassy carbon in Fe-free 0.1 M NaOH, over a monosaccharide concentration range of 1–5 mM. All molecules exhibit an oxidation ‘onset’ approximately 250 mV below the Ni(OH) 2 /NiOOH transition peak, with the shape of the “low-potential” oxidation wave strongly dependent on the molecular structure. To rationalize these observations, we develop a two-site microkinetic model that explicitly accounts for surface heterogeneity, comprising highly reactive “minority-site” (likely defect sites) and more abundant “majority-sites”, both supporting parallel Eley–Rideal and Langmuir–Hinshelwood pathways. Sensitivity analysis reveals that the Eley–Rideal pathway dominates in the “low-potential” interval, with the ‘onset’ potential primarily governed by the standard potential of the Ni(OH) 2 /NiOOH transition on the “minority-site”. The simulations semi-quantitatively reproduce the voltammetric response of glucose, fructose, and erythrose, highlighting the critical role of intrinsic surface site heterogeneity in monosaccharide electrooxidation and providing a transferable modeling framework for the rational design of advanced Ni-based electrocatalysts. • Electrooxidation of C3–C6 monosaccharides starts below the Ni(OH) 2 /NiOOH peak. • A two-site microkinetic model accurately captures characteristic features of experimental CVs. • The low-potential ‘onset’ is attributed to the presence of highly active “minority-sites” • Oxidation at “minority-sites” primarily proceeds through an Eley–Rideal pathway. • Oxidation at high potentials occurs via dual Eley–Rideal and Langmuir-Hinshelwood mechanism.

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Cite This Study

Shen et al. (2026) studied this question.

synapsesocial.com/papers/69c8c195de0f0f753b39bde6https://doi.org/10.1016/j.electacta.2026.148734
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