Literature DB >> 26486819

Tuning the Reactivity of Chromium(III)-Superoxo Species by Coordinating Axial Ligands.

Yi Re Goo1, Annada C Maity1, Kyung-Bin Cho1, Yong-Min Lee1, Mi Sook Seo1, Young Jun Park1, Jaeheung Cho2, Wonwoo Nam1.   

Abstract

Metal-superoxo species have attracted much attention recently as key intermediates in enzymatic and biomimetic oxidation reactions. The effect(s) of axial ligands on the chemical properties of metal-superoxo complexes has never been explored previously. In this study, we synthesized and characterized chromium(III)-superoxo complexes bearing TMC derivatives with pendant pyridine and imidazole donors, such as [Cr(III)(O2)(TMC-Py)](2+) (1, TMC-Py = 4,8,11-trimethyl-1-(2-pyridylmethyl)-1,4,8,11-tetraazacyclotetradecane) and [Cr(III)(O2)(TMC-Im)](2+) (2, TMC-Im = 4,8,11-trimethyl-1-(2-methylimidazolmethyl)-1,4,8,11-tetraazacyclotetradecane). The reactivity of chromium(III)-superoxo complexes binding different axial ligands, such as 1, 2, and [Cr(III)(O2)(TMC)(Cl)](+) (3, TMC = 1,4,8,11-tetramethyl-1,4,8,11-tetraazacyclotetradecane), was then investigated in C-H bond activation and oxygen atom transfer reactions. Kinetic studies revealed that the reactivity of the Cr(III)-superoxo complexes depends on the axial ligands, showing the reactivity order of 1 > 2 > 3 in those electrophilic oxidation reactions. It was also shown that there is a good correlation between the reactivity of the chromium(III)-superoxo complexes and their redox potentials, in which the redox potentials of the chromium(III)-superoxo complexes are in the order 1 > 2 > 3. DFT calculations reproduced the reactivity order between 1 and 3 in both C-H bond activation and oxygen atom transfer reactions, and the latter reaction is described using orbital interactions. The calculations are also in agreement with the experimentally obtained redox potentials. The present results provide the first example showing that the reactivity of metal-superoxo species can be tuned by the electron-donating ability of axial ligands bound trans to the metal-superoxo moiety.

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Year:  2015        PMID: 26486819     DOI: 10.1021/acs.inorgchem.5b02068

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  4 in total

1.  A Nonheme Thiolate-Ligated Cobalt Superoxo Complex: Synthesis and Spectroscopic Characterization, Computational Studies, and Hydrogen Atom Abstraction Reactivity.

Authors:  Jesse B Gordon; Avery C Vilbert; Maxime A Siegler; Kyle M Lancaster; Pierre Moënne-Loccoz; David P Goldberg
Journal:  J Am Chem Soc       Date:  2019-02-18       Impact factor: 15.419

2.  Revisiting the Synthesis and Nucleophilic Reactivity of an Anionic Copper Superoxide Complex.

Authors:  Wilson D Bailey; Nicole L Gagnon; Courtney E Elwell; Anna C Cramblitt; Caitlin J Bouchey; William B Tolman
Journal:  Inorg Chem       Date:  2019-03-22       Impact factor: 5.165

3.  Synthesis and Assessment of Antibacterial Activities of Ruthenium(III) Mixed Ligand Complexes Containing 1,10-Phenanthroline and Guanide.

Authors:  Atakilt Abebe; Tizazu Hailemariam
Journal:  Bioinorg Chem Appl       Date:  2016-10-19       Impact factor: 7.778

4.  The Conversion of Superoxide to Hydroperoxide on Cobalt(III) Depends on the Structural and Electronic Properties of Azole-Based Chelating Ligands.

Authors:  Toshiki Nishiura; Takehiro Ohta; Takashi Ogura; Jun Nakazawa; Masaya Okamura; Shiro Hikichi
Journal:  Molecules       Date:  2022-09-28       Impact factor: 4.927

  4 in total

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