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Updated: Nov 22, 2025

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Published on: February 24, 2018
Multiple selectivity-determining mechanisms of H2O2 formation in iron porphyrin-catalysed oxygen reduction
Anna C Brezny1, Hannah S Nedzbala2, James M Mayer2
1Department of Chemistry, Yale University, New Haven, CT 06520, USA. james.mayer@yale.edu and Department of Chemistry, Skidmore College, Saratoga Springs, NY 12866, USA.
Abstract:
Multiple H2O2-forming mechanisms are accessible in Fe(porphyrin)-catalysed oxygen reduction, a key reaction in both fuel cell technologies and oxygen-utilizing enzymes. Our kinetic analysis reveals that the porphyrin secondary structure dictates the pathway for H2O2 formation. This approach is generalizable to other electrocatalytic processes and provides insight into the selectivity-determining steps.
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