Targeted proton delivery in the catalyzed reduction of oxygen to water by bimetallic pacman porphyrins

Christopher J. Chang, Zhi Heng Loh, Chunnian Shi, Fred C. Anson*, Daniel G. Nocera

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

258 Citations (Scopus)

Abstract

A combined experimental and theoretical investigation of the role of proton delivery in determining O2 reduction pathways catalyzed by cofacial bisporphyrins is presented. A homologous family of dicobalt(II) Pacman porphyrins anchored by xanthene [CO2(DPX) (1) and CO 2(DPXM) (3)] and dibenzofuran [CO2(DPD) (2) and CO 2(DPDM) (4)] have been synthesized, characterized, and evaluated as catalysts for the direct four-proton, four-electron reduction of O2 to H2O. Structural analysis of the intramolecular diiron(III) μ-oxo complex Fe2O(DPXM) (5) and electrochemical measurements of 1-4 establish that Pacman derivatives bearing an aryl group trans to the spacer possess structural flexibilities and redox properties similar to those of their parent counterparts; however, these trans-aryl catalysts exhibit markedly reduced selectivities for the direct reduction of O2 to H 2O over the two-proton, two-electron pathway to H2O 2. Density functional theory calculations reveal that trans-aryl substitution results in inefficient proton delivery to O2-bound catalysts compared to unsubstituted congeners. In particular, the HOMO of [CO2(DPXM)(O2)]+ disfavors proton transfer to the bound oxygen species, funneling the O-O activation pathway to single-electron chemistry and the production of H2O2, whereas the HOMO of [CO2(DPX)(O2)]+ directs protonation to the [CO2O2] core to facilitate subsequent multielectron O-O bond activation to generate two molecules of H2O. Our findings highlight the importance of controlling both proton and electron inventories for specific O-O bond activation and offer a unified model for O-O bond activation within the clefts of bimetallic porphyrins.

Original languageEnglish
Pages (from-to)10013-10020
Number of pages8
JournalJournal of the American Chemical Society
Volume126
Issue number32
DOIs
Publication statusPublished - Aug 18 2004
Externally publishedYes

ASJC Scopus Subject Areas

  • Catalysis
  • General Chemistry
  • Biochemistry
  • Colloid and Surface Chemistry

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