4.6 Article

Efficient Epoxidation of Electron-Deficient Alkenes with Hydrogen Peroxide Catalyzed by [γ-PW10O38V2(μ-OH)2]3-

期刊

CHEMISTRY-A EUROPEAN JOURNAL
卷 17, 期 27, 页码 7549-7559

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.201101001

关键词

epoxidation; homogeneous catalysis; hydrogen peroxide; polyoxometalates; vanadium

资金

  1. Japan Society for the Promotion of Science (JSPS)
  2. Japan Science and Technology Agency (JST)
  3. COE
  4. Development in a New Interdisciplinary Field Based on Nanotechnology and Materials Science Programs
  5. Ministry of Education, Culture, Science, Sports, and Technology of Japan
  6. Grants-in-Aid for Scientific Research [11J09006] Funding Source: KAKEN

向作者/读者索取更多资源

A divanadium-substituted phosphotungstate,[g-PW10O38V2(mOH)(2)](3-) (I), showed the highest catalytic activity for the H2O2-based epoxidation of allyl acetate among vanadium and tungsten complexes with a turnover number of 210. In the presence of I, various kinds of electron-deficient alkenes with acetate, ether, carbonyl, and chloro groups at the allylic positions could chemoselectively be oxidized to the corresponding epoxides in high yields with only an equimolar amount of H2O2 with respect to the substrates. Even acrylonitrile and methacrylonitrile could be epoxidized without formation of the corresponding amides. In addition, I could rapidly (<= 10min) catalyze epoxidation of various kinds of terminal, internal, and cyclic alkenes with H2O2 under the stoichiometric conditions. The mechanistic, spectroscopic, and kinetic studies showed that the I-catalyzed epoxidation consists of the following three steps: 1) The reaction of I with H2O2 leads to reversible formation of a hydroperoxo species [g-PW10O38V2(mOH) (m-OOH)](3-) (II), 2) the successive dehydration of II forms an active oxygen species with a peroxo group [gPW(10)O(38)V(2)(mu-eta(2):eta(2)-O-2)](3-)(III), and 3) III reacts with alkene to form the cor-responding epoxide. The kinetic studies showed that the present epoxidation proceeds via III. Catalytic activities of divanadium-substituted polyoxotungstates for epoxidation with H2O2 were dependent on the different kinds of the heteroatoms (i.e., Si or P) in the catalyst and I was more active than [g-SiW10O38V2(m-OH)(2)](4-). On the basis of the kinetic, spectroscopic, and computational results, including those of [g-SiW10O38V2(m-OH)(2)](4-), the acidity of the hydroperoxo species in II would play an important role in the dehydration reactivity (i.e., k(3)). The largest k(3) value of I leads to a significant increase in the catalytic activity of I under the more concentrated conditions.

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