4.4 Article

The secondary coordination sphere and axial ligand effects on oxygen reduction reaction by iron porphyrins: a DFT computational study

Journal

JOURNAL OF BIOLOGICAL INORGANIC CHEMISTRY
Volume 21, Issue 5-6, Pages 745-755

Publisher

SPRINGER
DOI: 10.1007/s00775-016-1380-9

Keywords

Computational chemistry; Density functional theory; Dioxygen; Heme; Model compound; Porphyrin; Electrochemistry

Funding

  1. JSPS [24550080, 25109535]
  2. Elemental Science and Technology Project from MEXT of Japan
  3. Mitsubishi UFJ Trust
  4. NSF of China [21271072, 21571062]
  5. Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning
  6. Grants-in-Aid for Scientific Research [16H00848, 25109535, 15H00960, 16K05850, 24550080] Funding Source: KAKEN

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Oxygen reduction reaction (ORR) catalyzed by a bio-inspired iron porphyrin bearing a hanging carboxylic acid group over the porphyrin ring, and a tethered axial imidazole ligand was studied by DFT calculations. BP86 free energy calculations of the redox potentials and pK (a)'s of reaction components involved in the proton coupled electron transfer (PCET) reactions of the ferric-hydroxo and -superoxo complexes were performed based on Born-Haber thermodynamic cycle in conjunction with a continuum solvation model. The comparison was made with iron porphyrins that lack either in the hanging acid group or axial ligand, suggesting that H-bond interaction between the carboxylic acid and iron-bound hydroxo, aquo, superoxo, and peroxo ligands (de)stabilizes the Fe-O bonding, resulting in the increase in the reduction potential of the ferric complexes. The axial ligand interaction with the imidazole raises the affinity of the iron-bound superoxo and peroxo ligands for proton. In addition, a low-spin end-on ferric-hydroperoxo intermediate, a key precursor for O-O cleavage, can be stabilized in the presence of axial ligation. Thus, selective and efficient ORR of iron porphyrin can be achieved with the aid of the secondary coordination sphere and axial ligand interactions.

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