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May 15, 2026ChemistrySelect0 citations

Evaluation of Cu‐Doped FeO Nanoparticles Synthesized via Green Method as High‐Performance Cathode Catalysts for PEM Fuel Cells

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STSuna TarhanÖŞÖmer ŞahinOBOrhan Baytar

Key Points

  • This study aims to evaluate the effectiveness of Cu-doped FeO nanoparticles as cathode catalysts in PEM fuel cells, focusing on their structural properties and performance.
  • Green synthesis of Cu-doped FeO nanoparticles using fig leaf extract.
  • Conducted structural and performance analyses using BET and durability tests over 250 CV cycles.
  • Evaluated catalyst performance in single-cell PEMFC tests at varied temperatures.
  • Pt–CuFeO/C catalyst achieved a current density of 250 mAcm −2 at 70°C, outperforming the 212 mAcm −2 of Pt–FeO/C at 60°C.
  • Surface area increased significantly from 54.4 m 2 g −1 (Pt–FeO/C) to 185.1 m 2 g −1 (Pt–CuFeO/C).
  • Durability tests showed Pt–CuFeO/C maintained 73% ECSA, compared to 29% for Pt–FeO/C.

Abstract

ABSTRACT This study reports the green synthesis of FeO and 5 wt.% Cu‐doped FeO nanoparticles using fig leaf extract and their application as cathode catalysts in proton exchange membrane fuel cells (PEMFCs). Structural analyses indicated the formation of crystalline FeO nanoparticles with an average size of approximately 4 nm, while Pt–FeO/C and Pt–CuFeO/C catalysts exhibited smaller particle sizes of 2 nm. BET analysis revealed a significant increase in surface area from 54.4 m 2 g −1 (Pt–FeO/C) to 185.1 m 2 g −1 (Pt–CuFeO/C), accompanied by an increase in electrochemically active surface area (ECSA) from 97 to 213 m 2 g −1 Pt upon Cu incorporation. Durability tests over 250 CV cycles showed that Pt–CuFeO/C retained 73% of its ECSA, compared to 29% for Pt–FeO/C, suggesting improved structural stability. Single‐cell PEMFC evaluations demonstrated that catalyst performance was temperature‐dependent. The Pt–CuFeO/C catalyst achieved a current density of approximately 250 mAcm −2 at 70°C under PEMFC operating conditions, whereas Pt–FeO/C reached 212 mAcm −2 at 60°C but showed decreased performance at higher temperatures.

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Cite This Study

Tarhan et al. (2026) studied this question.

synapsesocial.com/papers/6a06b914e7dec685947aba0dhttps://doi.org/10.1002/slct.202506932
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