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Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity

Fullerene epoxides, C(60)O(n), having epoxide groups directly attached to the fullerene cage, constitute an interesting class of fullerene derivatives. In particular, the chemical transformations of fullerene epoxides are expected to play an important role in the development of functionalized fuller...

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Autores principales: Tajima, Yusuke, Takeshi, Kazumasa, Shigemitsu, Yasuo, Numata, Youhei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6268341/
https://www.ncbi.nlm.nih.gov/pubmed/22634847
http://dx.doi.org/10.3390/molecules17066395
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author Tajima, Yusuke
Takeshi, Kazumasa
Shigemitsu, Yasuo
Numata, Youhei
author_facet Tajima, Yusuke
Takeshi, Kazumasa
Shigemitsu, Yasuo
Numata, Youhei
author_sort Tajima, Yusuke
collection PubMed
description Fullerene epoxides, C(60)O(n), having epoxide groups directly attached to the fullerene cage, constitute an interesting class of fullerene derivatives. In particular, the chemical transformations of fullerene epoxides are expected to play an important role in the development of functionalized fullerenes. This is because such transformations can readily afford a variety of mono- or polyfunctionalized fullerene derivatives while conserving the epoxy ring arrangement on the fullerene surface, as seen in representative regioisomeric fullerene polyepoxides. The first part of this review addresses the synthesis and structural characterization of fullerene epoxides. The formation of fullerene epoxides through different oxidation reactions is then explored. Adequate characterization of the isolated fullerene epoxides was achieved by concerted use of NMR and LC-MS techniques. The second part of this review addresses the substitution of fullerene epoxides in the presence of a Lewis acid catalyst. Most major substitution products have been isolated as pure compounds and their structures established through spectroscopic methods. The correlation between the structure of the substitution product and the oxygenation pattern of the starting materials allows elucidation of the mechanistic features of this transformation. This approach promises to lead to rigorous regioselective production of various fullerene derivatives for a wide range of applications.
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spelling pubmed-62683412018-12-12 Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity Tajima, Yusuke Takeshi, Kazumasa Shigemitsu, Yasuo Numata, Youhei Molecules Review Fullerene epoxides, C(60)O(n), having epoxide groups directly attached to the fullerene cage, constitute an interesting class of fullerene derivatives. In particular, the chemical transformations of fullerene epoxides are expected to play an important role in the development of functionalized fullerenes. This is because such transformations can readily afford a variety of mono- or polyfunctionalized fullerene derivatives while conserving the epoxy ring arrangement on the fullerene surface, as seen in representative regioisomeric fullerene polyepoxides. The first part of this review addresses the synthesis and structural characterization of fullerene epoxides. The formation of fullerene epoxides through different oxidation reactions is then explored. Adequate characterization of the isolated fullerene epoxides was achieved by concerted use of NMR and LC-MS techniques. The second part of this review addresses the substitution of fullerene epoxides in the presence of a Lewis acid catalyst. Most major substitution products have been isolated as pure compounds and their structures established through spectroscopic methods. The correlation between the structure of the substitution product and the oxygenation pattern of the starting materials allows elucidation of the mechanistic features of this transformation. This approach promises to lead to rigorous regioselective production of various fullerene derivatives for a wide range of applications. MDPI 2012-05-25 /pmc/articles/PMC6268341/ /pubmed/22634847 http://dx.doi.org/10.3390/molecules17066395 Text en © 2012 by the authors; licensee MDPI, Basel, Switzerland. http://creativecommons.org/licenses/by/3.0/ This article is an open-access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Review
Tajima, Yusuke
Takeshi, Kazumasa
Shigemitsu, Yasuo
Numata, Youhei
Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity
title Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity
title_full Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity
title_fullStr Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity
title_full_unstemmed Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity
title_short Chemistry of Fullerene Epoxides: Synthesis, Structure, and Nucleophilic Substitution-Addition Reactivity
title_sort chemistry of fullerene epoxides: synthesis, structure, and nucleophilic substitution-addition reactivity
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6268341/
https://www.ncbi.nlm.nih.gov/pubmed/22634847
http://dx.doi.org/10.3390/molecules17066395
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AT takeshikazumasa chemistryoffullereneepoxidessynthesisstructureandnucleophilicsubstitutionadditionreactivity
AT shigemitsuyasuo chemistryoffullereneepoxidessynthesisstructureandnucleophilicsubstitutionadditionreactivity
AT numatayouhei chemistryoffullereneepoxidessynthesisstructureandnucleophilicsubstitutionadditionreactivity