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Mechanism of Thioether Oxidation over Di- and Tetrametic Ti Centers: Kinetic and DFT Studies Based on Model Ti-Containing Polyoxometalates Научная публикация

Журнал Chemistry - A European Journal
ISSN: 0947-6539 , E-ISSN: 1521-3765
Вых. Данные Год: 2015, Том: 21, Номер: 41, Страницы: 14496-14506 Страниц : 11 DOI: 10.1002/chem.201501157
Ключевые слова density functional calculations, homogenous catalysis, kinetic modeling, polyoxometalates, sulfoxidation, titanium
Авторы Skobelev Igor Y. 1 , Zalomaeva Olga V. 1 , Kholdeeva Oxana A. 1,2 , Poblet Josep M. 3 , Carbo Jorge J. 3
Организации
1 Boreskov Institute of Catalysis, Russian Academy of Sciences, Lavrentiev avenue 5, Novosibirsk 630090 (Russia)
2 Novosibirsk State University, Prirogova 2 str., Novosibirsk 630090 (Russia)
3 Department de Quimica Fisica i Inorgnica, Universitat Rovira i Vigili, Marcel·li Domingo 1, 43007 Tarragona (Spain)

Информация о финансировании (5)

1 Российский фонд фундаментальных исследований 13-03-12042
2 European Commission
3 Rovira i Virgili University
4 Ministry of Economic Affairs and Digital Transformation CTQ2011-29054-C02-01
5 Government of Catalonia 2014SGR199

Реферат: The oxidation of thioethers by the green oxidant aqueous H2O2 catalysed by the tetratitanium-substituted Polyoxometalate (POM) (Bu4N)8[{γ-SiTi2W10O36(OH)2}2(μ-O)2], as a model catalyst comprising tetrameric titanium centres, was investigated by kinetic modelling and DFT calculations. Several mechanisms of sulfoxidation were evaluated by using methyl phenyl sulfide (PhSMe) as a model substrate in the experiments and dimethyl sulfide in the calculations. The first mechanism assumes that the active hydroperoxo species forms directly through interaction of the Ti2(μ-OH)2 group in [{γ-SiTi2W10O36(OH)2}2(μ-O)2]8− (1 D) with H2O2. The second mechanism includes hydrolysis of Ti-O-Ti bonds linking two γ-Keggin units in structure 1 D to produce the monomer [(γ-SiW10Ti2O38H2)(OH)2]4− (1 M), followed by the formation of an active hydroperoxo species upon interaction of the Ti hydroxo group with H2O2. Both kinetic modelling and DFT calculations support the mechanism through the monomeric species that involves the hydrolysis step. According to the DFT studies the activation of H2O2 by compound 1 M is preferred by 6.5 kcal mol−1 with respect to anion 1 D due to the more flexible Ti environment of the terminal Ti hydroxo group in 1 M. The calculations also indicate that for the „monomeric“ mechanism two pathways are operative: the mono- and the multinuclear pathway. In the mononuclear mechanism, the active group is the terminal Ti[BOND]OH group, whereas in the multinuclear path the active group is the bridging Ti2(μ-OH) moiety. Moreover, unlike previous studies, the sulfoxidation is preferred through a β-oxygen atom transfer from the Ti hydroperoxo group because the α-oxygen atom transfer leads to an unfavourable seven-fold coordinated Ti environment in the transition state. Finally, we have generalised these results to other Ti-containing POMs: the Ti-monosubstituted α-Keggin ion [α-PTi(OH)W11O39]4− and the dititanium-substituted sandwich-type ion [Ti2(OH)2As2W19O67]8−.
Библиографическая ссылка: Skobelev I.Y. , Zalomaeva O.V. , Kholdeeva O.A. , Poblet J.M. , Carbo J.J.
Mechanism of Thioether Oxidation over Di- and Tetrametic Ti Centers: Kinetic and DFT Studies Based on Model Ti-Containing Polyoxometalates
Chemistry - A European Journal. 2015. V.21. N41. P.14496-14506. DOI: 10.1002/chem.201501157 WOS Scopus РИНЦ CAPlusCA PMID OpenAlex
Даты:
Поступила в редакцию: 24 мар. 2015 г.
Опубликована online: 13 авг. 2015 г.
Опубликована в печати: 5 окт. 2015 г.
Идентификаторы БД:
Web of science: WOS:000363331600034
Scopus: 2-s2.0-84942292972
РИНЦ: 24950866
Chemical Abstracts: 2015:1528791
Chemical Abstracts (print): 163:489643
PMID (PubMed): 26384744
OpenAlex: W2164532034
Цитирование в БД:
БД Цитирований
Web of science 27
Scopus 29
РИНЦ 26
OpenAlex 29
Альметрики: