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Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity

A series of phenylsilsesquioxane-benzoate heptacopper complexes 1–3 were synthesized and characterized by X-ray crystallography. Two parallel routes of toluene spontaneous oxidation (into benzyl alcohol and benzoate) assisted the formation of the cagelike structure 1. A unique multi-ligation of copp...

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Autores principales: Bilyachenko, Alexey N., Khrustalev, Victor N., Gutsul, Evgenii I., Zueva, Anna Y., Korlyukov, Alexander A., Shul’pina, Lidia S., Ikonnikov, Nikolay S., Dorovatovskii, Pavel V., Gelman, Dmitri, Shubina, Elena S., Shul’pin, Georgiy B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739484/
https://www.ncbi.nlm.nih.gov/pubmed/36500598
http://dx.doi.org/10.3390/molecules27238505
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author Bilyachenko, Alexey N.
Khrustalev, Victor N.
Gutsul, Evgenii I.
Zueva, Anna Y.
Korlyukov, Alexander A.
Shul’pina, Lidia S.
Ikonnikov, Nikolay S.
Dorovatovskii, Pavel V.
Gelman, Dmitri
Shubina, Elena S.
Shul’pin, Georgiy B.
author_facet Bilyachenko, Alexey N.
Khrustalev, Victor N.
Gutsul, Evgenii I.
Zueva, Anna Y.
Korlyukov, Alexander A.
Shul’pina, Lidia S.
Ikonnikov, Nikolay S.
Dorovatovskii, Pavel V.
Gelman, Dmitri
Shubina, Elena S.
Shul’pin, Georgiy B.
author_sort Bilyachenko, Alexey N.
collection PubMed
description A series of phenylsilsesquioxane-benzoate heptacopper complexes 1–3 were synthesized and characterized by X-ray crystallography. Two parallel routes of toluene spontaneous oxidation (into benzyl alcohol and benzoate) assisted the formation of the cagelike structure 1. A unique multi-ligation of copper ions (from (i) silsesquioxane, (ii) benzoate, (iii) benzyl alcohol, (iv) pyridine, (v) dimethyl-formamide and (vi) water ligands) was found in 1. Directed self-assembly using benzoic acid as a reactant afforded complexes 2–3 with the same main structural features as for 1, namely heptanuclear core coordinated by (i) two distorted pentameric cyclic silsesquioxane and (ii) four benzoate ligands, but featuring other solvate surroundings. Complex 3 was evaluated as a catalyst for the oxidation of alkanes to alkyl hydroperoxides and alcohols to ketones with hydrogen peroxide and tert-butyl hydroperoxide, respectively, at 50 °C in acetonitrile. The maximum yield of cyclohexane oxidation products as high as 32% was attained. The oxidation reaction results in a mixture of cyclohexyl hydroperoxide, cyclohexanol, and cyclohexanone. Upon the addition of triphenylphosphine, the cyclohexyl hydroperoxide is completely converted to cyclohexanol. The specific regio- and chemoselectivity in the oxidation of n-heptane and methylcyclohexane, respectively, indicate the involvement of of hydroxyl radicals. Complex 3 exhibits a high activity in the oxidation of alcohols.
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spelling pubmed-97394842022-12-11 Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity Bilyachenko, Alexey N. Khrustalev, Victor N. Gutsul, Evgenii I. Zueva, Anna Y. Korlyukov, Alexander A. Shul’pina, Lidia S. Ikonnikov, Nikolay S. Dorovatovskii, Pavel V. Gelman, Dmitri Shubina, Elena S. Shul’pin, Georgiy B. Molecules Article A series of phenylsilsesquioxane-benzoate heptacopper complexes 1–3 were synthesized and characterized by X-ray crystallography. Two parallel routes of toluene spontaneous oxidation (into benzyl alcohol and benzoate) assisted the formation of the cagelike structure 1. A unique multi-ligation of copper ions (from (i) silsesquioxane, (ii) benzoate, (iii) benzyl alcohol, (iv) pyridine, (v) dimethyl-formamide and (vi) water ligands) was found in 1. Directed self-assembly using benzoic acid as a reactant afforded complexes 2–3 with the same main structural features as for 1, namely heptanuclear core coordinated by (i) two distorted pentameric cyclic silsesquioxane and (ii) four benzoate ligands, but featuring other solvate surroundings. Complex 3 was evaluated as a catalyst for the oxidation of alkanes to alkyl hydroperoxides and alcohols to ketones with hydrogen peroxide and tert-butyl hydroperoxide, respectively, at 50 °C in acetonitrile. The maximum yield of cyclohexane oxidation products as high as 32% was attained. The oxidation reaction results in a mixture of cyclohexyl hydroperoxide, cyclohexanol, and cyclohexanone. Upon the addition of triphenylphosphine, the cyclohexyl hydroperoxide is completely converted to cyclohexanol. The specific regio- and chemoselectivity in the oxidation of n-heptane and methylcyclohexane, respectively, indicate the involvement of of hydroxyl radicals. Complex 3 exhibits a high activity in the oxidation of alcohols. MDPI 2022-12-03 /pmc/articles/PMC9739484/ /pubmed/36500598 http://dx.doi.org/10.3390/molecules27238505 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bilyachenko, Alexey N.
Khrustalev, Victor N.
Gutsul, Evgenii I.
Zueva, Anna Y.
Korlyukov, Alexander A.
Shul’pina, Lidia S.
Ikonnikov, Nikolay S.
Dorovatovskii, Pavel V.
Gelman, Dmitri
Shubina, Elena S.
Shul’pin, Georgiy B.
Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity
title Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity
title_full Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity
title_fullStr Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity
title_full_unstemmed Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity
title_short Hybrid Silsesquioxane/Benzoate Cu(7)-Complexes: Synthesis, Unique Cage Structure, and Catalytic Activity
title_sort hybrid silsesquioxane/benzoate cu(7)-complexes: synthesis, unique cage structure, and catalytic activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739484/
https://www.ncbi.nlm.nih.gov/pubmed/36500598
http://dx.doi.org/10.3390/molecules27238505
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