This study investigates the influence of different iron precursors and CeO2 integration on the performance of FeN-C catalysts, aiming to replace costly Pt-based catalysts in fuel cells. Nitrogen-doped reduced graphene oxides are synthesized through nitric acid and ammonia treatments for enhanced surface area utilization. Fe-N-C synthesis via iron decoration of these N-doped reduced graphene oxide using FeCl2, FeCl3, and FeSO4 precursors, along with CeO2 enhancement, is investigated. FeCl3 emerges as the most effective precursor, showing a substantial performance improvement (92 % and 54 % higher peak power density compared to FeSO4 and FeCl2, respectively). Additionally, the introduction of CeO2 leads to nearly 20 % increase in peak power densities for all developed Fe-N-C catalysts. This research highlights the potential of Fe-N-C catalysts, particularly those decorated with FeCl3 and integrated with CeO2, for efficient fuel cell applications, emphasizing their nanoscale advantages.

Scalable nano-sized Fe-N-C catalysts for fuel cells: Evaluating the impact of iron precursors and CeO2 addition

Yarar Kaplan B.
2024

Abstract

This study investigates the influence of different iron precursors and CeO2 integration on the performance of FeN-C catalysts, aiming to replace costly Pt-based catalysts in fuel cells. Nitrogen-doped reduced graphene oxides are synthesized through nitric acid and ammonia treatments for enhanced surface area utilization. Fe-N-C synthesis via iron decoration of these N-doped reduced graphene oxide using FeCl2, FeCl3, and FeSO4 precursors, along with CeO2 enhancement, is investigated. FeCl3 emerges as the most effective precursor, showing a substantial performance improvement (92 % and 54 % higher peak power density compared to FeSO4 and FeCl2, respectively). Additionally, the introduction of CeO2 leads to nearly 20 % increase in peak power densities for all developed Fe-N-C catalysts. This research highlights the potential of Fe-N-C catalysts, particularly those decorated with FeCl3 and integrated with CeO2, for efficient fuel cell applications, emphasizing their nanoscale advantages.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11577/3534307
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