Abstract
The design of efficient electrocatalysts is limited by scaling relationships governing trade-offs between thermodynamic and kinetic performance metrics. This ″iron law″ of electrocatalysis arises from synthetic design strategies, where structural alterations to a catalyst must balance nucleophilic versus electrophilic character. Efforts to circumvent this fundamental impasse have focused on bioinspired applications of extended coordination spheres and charged sites proximal to a catalytic center. Herein, we report evidence for breaking a molecular scaling relationship involving electrocatalysis of the oxygen reduction reaction (ORR) by leveraging ligand design. We achieve this using a binuclear catalyst (a diiron porphyrin), featuring a macrocyclic ligand with extended electronic conjugation. This ligand motif delocalizes electrons across the molecular scaffold, improving the catalyst’s nucleophilic and electrophilic character. As a result, our binuclear catalyst exhibits low overpotential and high catalytic turnover frequency, breaking the traditional trade-off between these two metrics.
Original language | English (US) |
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Pages (from-to) | 11622-11633 |
Number of pages | 12 |
Journal | Journal of the American Chemical Society |
Volume | 146 |
Issue number | 17 |
DOIs | |
State | Published - May 1 2024 |
ASJC Scopus subject areas
- Catalysis
- General Chemistry
- Biochemistry
- Colloid and Surface Chemistry
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CCDC 2264458: Experimental Crystal Structure Determination
Nishiori, D. (Contributor), Menzel, J. P. (Contributor), Armada, N. (Contributor), Reyes Cruz, E. A. (Contributor), Nannenga, B. L. (Contributor), Batista, V. S. (Contributor) & Moore, G. F. (Contributor), Cambridge Crystallographic Data Centre, 2024
DOI: 10.5517/ccdc.csd.cc2g0c1x, http://www.ccdc.cam.ac.uk/services/structure_request?id=doi:10.5517/ccdc.csd.cc2g0c1x&sid=DataCite
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