Issue 3, 2014

Electron transfer and binding affinities in an electrochemically controlled ligand transfer system containing zinc porphyrin and a meso-phenylenediamine substituent

Abstract

Investigations on the transfer of the ligand, imidazole (HIm), between two covalently linked redox centres – zinc porphyrin and phenylenediamine (PD) – and the influence of the length of the linker are reported. Since the binding affinity of the ligand with zinc porphyrin is different from that of the ligand with the phenylenediamine moiety, the transfer of the ligand could be electrochemically controlled by adjusting the oxidation potentials. Changes in cyclic voltammograms and absorption spectra of the complexes revealed the site of ligand binding in the various oxidation states of the modified zinc porphyrins. Binding constants of the modified zinc porphyrins in various oxidation states were also determined by photometric titration with the ligand and digital simulations. Evidence for the delocalization of the electron from the zinc porphyrin to the phenylenediamine moiety and the influence of the delocalization on them were obtained from EPR studies.

Graphical abstract: Electron transfer and binding affinities in an electrochemically controlled ligand transfer system containing zinc porphyrin and a meso-phenylenediamine substituent

Supplementary files

Article information

Article type
Paper
Submitted
06 Sep 2013
Accepted
24 Oct 2013
First published
28 Oct 2013

Dalton Trans., 2014,43, 1424-1433

Electron transfer and binding affinities in an electrochemically controlled ligand transfer system containing zinc porphyrin and a meso-phenylenediamine substituent

H. C. Cheng, P. P. Y. Chen and Y. O. Su, Dalton Trans., 2014, 43, 1424 DOI: 10.1039/C3DT52463A

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