TY - JOUR
T1 - Mechanistic insights into the oxidation of veratryl alcohol with Co(salen) and oxygen in aqueous media
T2 - An in-situ spectroscopic study
AU - Kervinen, K.
AU - Korpi, H.
AU - Mesu, J.G.
AU - Soulimani, F.
AU - Repo, T.
AU - Rieger, B.
AU - Leskela, M.
AU - Weckhuysen, B.M.
PY - 2005/7/4
Y1 - 2005/7/4
N2 - Many transition-metal complexes can perform catalytic oxidations, but their corresponding reaction pathways are still not clear. In this study, the mechanism of Co (salen)-catalyzed [salen = N,N'-bis(sahcylidene)ethylenediamine] oxidization of veratryl alcohol (3,4-dimethoxybenzyl alcohol) by di-oxygen in alkaline aqueous solution was elucidated with in-situ ATR-IR, Raman and UV/Vis spectroscopy. The mechanism of this reaction seems to start by formation of a mu-hydroxo[(Co(salen)](2) species, which explains the dramatic effect of pH on the reaction rate. Substrate coordination to this species leads to formation of a cobalt-bound veratryl alkoxo intermediate, to which oxygen molecule can bind. For-mation of a mu-peroxo bridge between two such Co(salen) substrate units is observed in the UV/Vis spectra. Transfer of a hydrogen atom from the substrate to the peroxo bridge results in detachment of the product aldehyde and regeneration of the initial bis-mu-hydroxo[(Co(salen)](2) species. In the overall cycle two substrate molecules are oxidized to aldehyde and molecular oxygen is reduced to water. The rate-limiting step is the detachment of the product molecule, which is aided by the methoxy substituents in the aromatic ring of the benzylic alcohol.
AB - Many transition-metal complexes can perform catalytic oxidations, but their corresponding reaction pathways are still not clear. In this study, the mechanism of Co (salen)-catalyzed [salen = N,N'-bis(sahcylidene)ethylenediamine] oxidization of veratryl alcohol (3,4-dimethoxybenzyl alcohol) by di-oxygen in alkaline aqueous solution was elucidated with in-situ ATR-IR, Raman and UV/Vis spectroscopy. The mechanism of this reaction seems to start by formation of a mu-hydroxo[(Co(salen)](2) species, which explains the dramatic effect of pH on the reaction rate. Substrate coordination to this species leads to formation of a cobalt-bound veratryl alkoxo intermediate, to which oxygen molecule can bind. For-mation of a mu-peroxo bridge between two such Co(salen) substrate units is observed in the UV/Vis spectra. Transfer of a hydrogen atom from the substrate to the peroxo bridge results in detachment of the product aldehyde and regeneration of the initial bis-mu-hydroxo[(Co(salen)](2) species. In the overall cycle two substrate molecules are oxidized to aldehyde and molecular oxygen is reduced to water. The rate-limiting step is the detachment of the product molecule, which is aided by the methoxy substituents in the aromatic ring of the benzylic alcohol.
KW - IR spectroscopy
KW - Raman spectroscopy
KW - Schiff bases
KW - UV/Vis spectroscopy
KW - Cobalt complexes
KW - Homogeneous catalysis
U2 - 10.1002/ejic.200500042
DO - 10.1002/ejic.200500042
M3 - Article
SN - 1434-1948
VL - 13
SP - 2591
EP - 2599
JO - European Journal of Inorganic Chemistry
JF - European Journal of Inorganic Chemistry
IS - 13
ER -