Abstract
Co II-substituted α-Keggin-type 12-tungstenphosphate [(n- C 4H 9) 4N] 4H[PW 11Co(H 2O)O 39]- (PW 11Co) is synthesized and used as a single-component, solvent-free catalyst in the cycloaddition reaction of CO 2 and epoxides to form cyclic carbonates. The mechanism of the cycloaddition reaction is investigated using DFT calculations, which provides the first computational study of the catalytic cycle of polyoxometalate- catalyzed CO 2 coupling reactions. The reaction occurs through a single-electron transfer from the doublet Co II catalyst to the epoxide and forms a doublet Co III-carbon radical intermediate. Subsequent CO 2 addition forms the cyclic carbonate product. The existence of radical intermediates is supported by free-radical termination experiments. Finally, it is exhilarating to observe that the calculated overall reaction barrier (30.5 kcal mol -1) is in good agreement with the real reaction rate (83 h -1) determined in the present experiments (at 150 °C). Organometallic radical intermediate: Cobalt-substituted α-Keggin-type 12-tungstenphosphate is used as an efficient single-component catalyst for the synthesis of cyclic carbonates from CO 2 and epoxides. DFT calculations indicate that the cycloaddition reaction occurs through single-electron transfer from the doublet Co II cluster to the epoxide, thus leading to homolytic cleavage of the C-O bond and formation of a carbon radical intermediate, followed by cyclization with CO 2 (see scheme).
Original language | English |
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Pages (from-to) | 9870-9876 |
Number of pages | 7 |
Journal | Chemistry - A European Journal |
Volume | 18 |
Issue number | 32 |
DOIs | |
Publication status | Published - 6 Aug 2012 |
Keywords
- carbon dioxide fixation
- density functional calculations
- epoxides
- polyoxometalates
- radical reactions