Insights into the electronic structure and mechanism of norcarane hydroxylation by OxoMn(V) porphyrin complexes: A density functional theory study.
J Comput Chem
; 42(27): 1920-1928, 2021 10 15.
Article
em En
| MEDLINE
| ID: mdl-34448235
Norcarane hydroxylation by neutral [PorMn(V)O-L] (LâOH- , F- ) and cationic [PorMn(V)O-L]+ (LâH2 O, imidazole) oxoMn(V) porphyrin complex models has been investigated by density functional theory calculations to better understand the reaction mechanism and electronic structure. We found that the energy barriers of norcarane hydroxylation by cationic oxoMn(V) porphyrin complexes are lower than those by neutral oxoMn(V) porphyrin complexes. This indicates that cationic oxoMn(V) porphyrin complexes enhance norcarane hydroxylation compared with neutral oxoMn(V) porphyrin complexes. According to electronic structure analysis, in the CâH activation step, electron transfer occurs through initial interaction between the σCH and rich-oxygen π(MnâO) orbitals to form real donor orbitals, followed by transfer to the acceptor π*(MnâO) orbitals. Moreover, single electron shifts from norcarane (CH) to Mn atom during CâH activation. The positive charge of the cationic complex stabilizes the acceptor orbital more than the donor orbital, reducing the energy gap between these orbitals, thus lowering the reaction barrier.
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01-internacional
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MEDLINE
Idioma:
En
Ano de publicação:
2021
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Article