Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5418107 | Journal of Molecular Structure: THEOCHEM | 2008 | 7 Pages |
Abstract
The cycloaddition mechanism of forming a silapolycyclic compound between singlet dimethylmethylenesilylene and acetone has been investigated with MP2/6-31Gâ method, including geometry optimization and vibrational analysis for the involved stationary points on the potential energy surface. The energies of the different conformations are calculated with CCSD(T)/6-31Gâ//MP2/6-31Gâ method. From the potential energy profile, we predict that the cycloaddition reaction has two competitive dominant channels of forming a silapolycyclic compound. Both channels consist of four steps: (I) the two reactants first form three-membered ring intermediate and twisted four-membered ring intermediate through a barrier-free exothermic reactions of ÎEÂ =Â â0.1 and â10.7Â kJÂ molâ1; (II) the three-membered ring intermediate and twisted four-membered ring intermediate then isomerize to two plane four-membered ring products via transition states with energy barriers of 3.4 and 6.5Â kJÂ molâ1; (III) the two plane four-membered ring products further react with acetone(R2) and form intermediates, which are also barrier-free exothermic reactions of ÎEÂ =Â â38.9 and â64.8Â kJÂ molâ1; (IV) the two intermediates isomerize to silapolycyclic compounds via transition states with energy barriers of 41.8 and 45.9Â kJÂ molâ1, respectively.
Related Topics
Physical Sciences and Engineering
Chemistry
Physical and Theoretical Chemistry
Authors
Chunliang Tian, Haibin Yu, Xiuhui Lu,