2012
DOI: 10.1016/j.jcat.2012.06.002
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Mechanistic insight into the cyclohexene epoxidation with VO(acac)2 and tert-butyl hydroperoxide

Abstract: The epoxidation reaction of cyclohexene is investigated for the system vanadyl acetylacetonate (VO(acac) 2 ) as catalyst with tert-butyl hydroperoxide (TBHP) as oxidant with the aim to identify the most active species for epoxidation and to retrieve insight into the most plausible epoxidation mechanism. The reaction mixture is composed of various inactive and active complexes in which vanadium may either have oxidation state +IV or +V. Inactive species are activated with TBHP to form active complexes. After re… Show more

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Cited by 42 publications
(79 citation statements)
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References 58 publications
(113 reference statements)
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“…Contrary to what is generally accepted for the Jacobsen-Katsuki epoxidation, the active epoxidizing agents in the Sharpless process are peroxo, hydro-peroxo or alkyl-peroxo-complexes [104]. Titanium and vanadium appear to bear similar chemical behavior, and both have attracted considerable attention in the last decade [105][106][107][108][109][110].…”
Section: Other Epoxidation Catalysts: a Brief Overviewmentioning
confidence: 99%
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“…Contrary to what is generally accepted for the Jacobsen-Katsuki epoxidation, the active epoxidizing agents in the Sharpless process are peroxo, hydro-peroxo or alkyl-peroxo-complexes [104]. Titanium and vanadium appear to bear similar chemical behavior, and both have attracted considerable attention in the last decade [105][106][107][108][109][110].…”
Section: Other Epoxidation Catalysts: a Brief Overviewmentioning
confidence: 99%
“…Titanium and vanadium appear to bear similar chemical behavior, and both have attracted considerable attention in the last decade [105][106][107][108][109][110]. In general, the coordination sphere in both cases can be quite labile (especially in the case of vanadyl(IV) acetylacetonate, VO(acac) 2 ) [104], which requires additional study of the effect of the different species available during the epoxidation process. In the case of vanadium, this was first systematically studied by Vandichel et al [104], whereas the case of titanium was tackled earlier by Sever and Root [111].…”
Section: Other Epoxidation Catalysts: a Brief Overviewmentioning
confidence: 99%
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“…TAMkin has already proved its efficiency in the computation of reaction kinetics [44,[70][71][72]. This program is used to investigate the kinetics and the activation barriers of the citronellal cyclization.…”
Section: Normal Mode Analysis and Thermochemistrymentioning
confidence: 99%