ACS Omega· 2026Q1
Benchmarking Faradaic Efficiency and O2 Quantification during Water Oxidation under Mild Conditions Using a 3D-Printed Cell and Clark Electrode
- 0citations
- Q1SCImago
- 2026year
Short summary
A novel 3D-printed electrochemical cell coupled with a Clark sensor enables in situ oxygen quantification during water oxidation, achieving high reproducibility and robustness for benchmarking electrocatalysts.
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Key points
- A 3D-printed cell and Clark sensor system allows for in situ oxygen quantification during OER.
- The methodology demonstrated high reproducibility and robustness across tested parameters.
- Platinum showed higher oxygen evolution (4.55 ± 0.5 mg L–1) and FE (85.6 ± 10.8%) than glassy carbon (2.32 ± 0.3 mg L–1, 43.6 ± 6.1%) at 10 mA.
- NiPBA exhibited the highest OER activity (0.40 ± 0.03 mg L–1 with 76.5 ± 5.7% FE) among Prussian blue analogues at 1 mA.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Producing green hydrogen via water electrolysis offers a potential pathway for achieving a sustainable energy transition. Despite its potential, it is limited by the sluggish kinetics of OER, which motivates the development of efficient catalysts. In addition, the field still lacks standardized and reproducible approaches for evaluating catalyst faradaic efficiency (FE) and monitoring the oxygen production. Therefore, we present a 3D-printed electrochemical cell coupled with a Clark sensor for in situ oxygen quantification during OER, while measurement uncertainties were examined to confirm the precision and reproducibility of the methodology. The effects of electrolyte concentration (0.1, 0.5, and 1.0 mol L–1 KNO3), different electrolytes (KNO3 and PBS), electrode surface area (0.071 and 0.195 cm2), and applied constant current (1, 5, and 10 mA) were investigated. Statistical validation demonstrated high reproducibility and robustness. At 10 mA in 0.1 mol L–1 KNO3 using a 0.071 cm2 electrode area, Pt exhibited higher oxygen evolution and FE (4.55 ± 0.5 mg L–1, 85.6 ± 10.8%) than GC (2.32 ± 0.3 mg L–1, 43.6 ± 6.1%). The methodology was subsequently applied to Prussian blue (FePBA), and its respective cobalt and nickel Prussian blue analogues (CoPBA and NiPBA, respectively). Among the investigated materials, NiPBA exhibited the highest OER activity (0.40 ± 0.03 mg L–1 with 76.5 ± 5.7% FE), and was comparable to CoPBA, while both outperformed FePBA at 1 mA. A trend in the NOP was observed among the PBAs, following the order NiPBA ≥ CoPBA > FePBA. This approach provides a reproducible platform for dissolved oxygen quantification and the standardized benchmarking of OER electrocatalysts.
The authors' abstract, as published at the source. ACS Omega, 2026 · DOI ↗
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Field: Renewable Energy, Sustainability and the Environment
Renewable Energy, Sustainability and the EnvironmentEnergy