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High-Cluster (Cu9) Cage Silsesquioxanes: Synthesis, Structure, and Catalytic Activity
Author(s) -
Grigorii S. Astakhov,
Аlexey N. Bilyachenko,
Аlexander А. Korlyukov,
Mikhail M. Levitsky,
Lidia S. Shul’pina,
Xavier Bantreil,
Frédéric Lamaty,
Анна В. Вологжанина,
Elena S. Shubina,
Павел В. Дороватовский,
Dmytro S. Nesterov,
Armando J. L. Pombeiro,
Georgiy B. Shul’pin⊗
Publication year - 2018
Publication title -
inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 233
eISSN - 1520-510X
pISSN - 0020-1669
DOI - 10.1021/acs.inorgchem.8b01496
Subject(s) - chemistry , cage , cluster (spacecraft) , catalysis , stereochemistry , crystallography , polymer chemistry , organic chemistry , structural engineering , programming language , engineering , computer science
Unusual high-cluster (Cu 9 ) cage phenylsilsesquioxanes were obtained via complexation of in situ Cu II ,Na-silsesquioxane species formed with phenanthroline and neocuproine. In the first case, phenanthroline, acting as "a silent ligand" (not participating in the composition of the final product), favors the formation of an unprecedented cagelike phenylsilsesquioxane of Cu 9 Na 6 nuclearity, 1. In the second case, neocuproine ligands withdraws two Cu ions from the metallasilsesquioxane matrix, producing two cationic fragments Cu + (neocuproine) 2 . The remaining metallasilsesquioxane is rearranged into an anionic cage of Cu 9 Na 4 nuclearity, finalizing the formation of a specific ionic complex, 2. The impressive molecular architecture of both types of complexes, e.g., the presence of different (cyclic/acyclic) types of silsesquioxane ligands, was established by single-crystal X-ray diffraction studies. Compound 1 was revealed to be highly active in the oxidative amidation of benzylic alcohol and the catalyst loading could be reduced down to 100 ppm of Cu. Catalytic studies of compound 1 demonstrated its high activity in hydroperoxidation of alkanes with H 2 O 2 and oxidation of alcohols to ketones with tert-BuOOH.

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