Literature DB >> 28191934

Electronic Structure of Corrole Derivatives: Insights from Molecular Structures, Spectroscopy, Electrochemistry, and Quantum Chemical Calculations.

Abhik Ghosh1.   

Abstract

Presented herein is a comprehensive account of the electronic structure of corrole derivatives. Our knowledge in this area derives from a broad range of methods, including UV-vis-NIR absorption and MCD spectroscopies, single-crystal X-ray structure determination, vibrational spectroscopy, NMR and EPR spectroscopies, electrochemistry, X-ray absorption spectroscopy, and quantum chemical calculations, the latter including both density functional theory and ab initio multiconfigurational methods. The review is organized according to the Periodic Table, describing free-base and main-group element corrole derivatives, then transition-metal corroles, and finally f-block element corroles. Like porphyrins, corrole derivatives with a redox-inactive coordinated atom follow the Gouterman four-orbital model. A key difference from porphyrins is the much wider prevalence of noninnocent electronic structures as well as full-fledged corrole•2- radicals among corrole derivatives. The most common orbital pathways mediating ligand noninnocence in transition-metal corroles are the metal(dz2)-corrole("a2u") interaction (most commonly observed in Mn and Fe corroles) and the metal(dx2-y2)-corrole(a2u) interaction in coinage metal corroles. Less commonly encountered is the metal(dπ)-corrole("a1u") interaction, a unique feature of formal d5 metallocorroles. Corrole derivatives exhibit a rich array of optical properties, including substituent-sensitive Soret maxima indicative of ligand noninnocence, strong fluorescence in the case of lighter main-group element complexes, and room-temperature near-IR phosphorescence in the case of several 5d metal complexes. The review concludes with an attempt at identifying gaps in our current knowledge and potential future directions of electronic-structural research on corrole derivatives.

Entities:  

Year:  2017        PMID: 28191934     DOI: 10.1021/acs.chemrev.6b00590

Source DB:  PubMed          Journal:  Chem Rev        ISSN: 0009-2665            Impact factor:   60.622


  31 in total

1.  Ligand Noninnocence in Iron Corroles: Insights from Optical and X-ray Absorption Spectroscopies and Electrochemical Redox Potentials.

Authors:  Sumit Ganguly; Logan J Giles; Kolle E Thomas; Ritimukta Sarangi; Abhik Ghosh
Journal:  Chemistry       Date:  2017-10-06       Impact factor: 5.236

2.  A3- and A2B-fluorocorroles: synthesis, X-ray characterization and antiviral activity evaluation against human cytomegalovirus infection.

Authors:  Sandrine Kappler-Gratias; Léo Bucher; Nicolas Desbois; Yoann Rousselin; Kerstin Bystricky; Claude P Gros; Franck Gallardo
Journal:  RSC Med Chem       Date:  2020-07-13

3.  Designer Heme Proteins: Achieving Novel Function with Abiological Heme Analogues.

Authors:  Christopher M Lemon; Michael A Marletta
Journal:  Acc Chem Res       Date:  2021-12-10       Impact factor: 22.384

4.  The nature of metal-metal bonding in Re-, Ru- and Os-corrole dimers.

Authors:  Mohammed Obies; Aqeel A Hussein
Journal:  RSC Adv       Date:  2022-06-28       Impact factor: 4.036

5.  Halogen Transfer to Carbon Radicals by High-Valent Iron Chloride and Iron Fluoride Corroles.

Authors:  Geoffrey W Farley; Maxime A Siegler; David P Goldberg
Journal:  Inorg Chem       Date:  2021-10-28       Impact factor: 5.436

6.  Corrole-Substituted Fluorescent Heme Proteins.

Authors:  Christopher M Lemon; Michael A Marletta
Journal:  Inorg Chem       Date:  2021-01-29       Impact factor: 5.165

7.  Rhenium Corrole Dimers: Electrochemical Insights into the Nature of the Metal-Metal Quadruple Bond.

Authors:  Abraham B Alemayehu; Laura J McCormick-McPherson; Jeanet Conradie; Abhik Ghosh
Journal:  Inorg Chem       Date:  2021-05-17       Impact factor: 5.165

8.  Photophysical properties and singlet oxygen generation of meso-iodinated free-base corroles.

Authors:  Fang Zhao; Xuan Zhan; Shu-Hui Lai; Lei Zhang; Hai-Yang Liu
Journal:  RSC Adv       Date:  2019-04-24       Impact factor: 4.036

9.  Rhenium-Imido Corroles.

Authors:  Abraham B Alemayehu; Simon J Teat; Sergey M Borisov; Abhik Ghosh
Journal:  Inorg Chem       Date:  2020-04-10       Impact factor: 5.165

10.  Selectivity of Cobalt Corrole for CO vs. O2 and N2 in Indoor Pollution.

Authors:  Xia Sheng; Hailiang Zhao; Lin Du
Journal:  Sci Rep       Date:  2017-11-06       Impact factor: 4.379

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