Theoretical studies of ethylene addition to transition metal compounds with carbene and oxo groups L n M(CH 2 )(O)
Quantum chemical calculations using density functional theory at the B3LYP level in combination with relativistic effective core potentials for the metals and TZ2P valence basis sets have been carried out for elucidating the reaction pathways of ethylene addition to MeReO 2 (CH 2 ) ( C1 ). The resul...
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Veröffentlicht in: | Journal of physical organic chemistry 2007-01, Vol.20 (1), p.11-18 |
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Hauptverfasser: | , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Quantum chemical calculations using density functional theory at the B3LYP level in combination with relativistic effective core potentials for the metals and TZ2P valence basis sets have been carried out for elucidating the reaction pathways of ethylene addition to MeReO
2
(CH
2
) (
C1
). The results are compared with our previous studies of ethylene addition to OsO
2
(CH
2
)
2
(
A1
) and OsO
3
(CH
2
) (
B1
). Significant differences have been found between the ethylene additions to the osmium compounds
A1
and
B1
and the rhenium compound
C1
. Seven pathways for the reaction
C1
+C
2
H
4
were studied, but only the [2+2]
Re,C
addition yielding rhenacyclobutane
C5
is an exothermic process with a high activation barrier of 48.9 kcal mol
−1
. The lowest activation energy (27.7 kcal mol
−1
) is calculated for the [2+2]
Re,C
addition, which leads to the isomeric form
C5
′. Two further concerted reactions [3+2]
O,C
, [3+2]
O,O
, and [2+2]
Re,O
and the addition/hydrogen migration of ethylene to one oxo ligand are endothermic processes which have rather high activation barriers (>35 kcal mol
−1
). Four isomerization processes of
C1
have very large activation energies of >65 kcal mol
−1
. The ethylene addition to the osmium compounds
A1
and
B1
are much more exothermic and have lower activation barriers than the C
2
H
4
addition to
C1
. Copyright © 2007 John Wiley & Sons, Ltd. |
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ISSN: | 0894-3230 1099-1395 |
DOI: | 10.1002/poc.1095 |