CASSCF computations suggest that the ground-state potential energy surface of housane radical cations is centered around a conical intersection (and its surrounding Jahn-Teller-type surface) at a planar, symmetric cyclopentane-1,3-diyl geometry. In our reactivity model, this region is connected to the reactants via a bridge-bending coordinate and to the products via a shift coordinate. The preference for the spin-localized planar intermediate is caused by the preferential energy stabilization along a charge localization coordinate (the derivative-coupling coordinate at the conical intersection). Mechanistically, our computations show that the reaction proceeds in two steps: the breakage of the one-electron bond of the reactants, which produces the asymmetric, quasi-planar intermediate and is the rate-determining step, and the subsequent 1,2 rearrangement, which is essentially barrierless. The reaction results in the selective 1,2 migration of the original endo substituent of the reactant.

Blancafort, L., Adam, W., González, D., Olivucci, M., Vreven, T., Robb, M.A. (1999). Theoretical Study of the 1,2 Rearrangement of Housane Radical Cations:  Key Role of a Transient Cyclopentane-1,3-diyl Intermediate. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 121(45), 10583-10590 [10.1021/ja991441p].

Theoretical Study of the 1,2 Rearrangement of Housane Radical Cations:  Key Role of a Transient Cyclopentane-1,3-diyl Intermediate

Olivucci, Massimo;
1999-01-01

Abstract

CASSCF computations suggest that the ground-state potential energy surface of housane radical cations is centered around a conical intersection (and its surrounding Jahn-Teller-type surface) at a planar, symmetric cyclopentane-1,3-diyl geometry. In our reactivity model, this region is connected to the reactants via a bridge-bending coordinate and to the products via a shift coordinate. The preference for the spin-localized planar intermediate is caused by the preferential energy stabilization along a charge localization coordinate (the derivative-coupling coordinate at the conical intersection). Mechanistically, our computations show that the reaction proceeds in two steps: the breakage of the one-electron bond of the reactants, which produces the asymmetric, quasi-planar intermediate and is the rate-determining step, and the subsequent 1,2 rearrangement, which is essentially barrierless. The reaction results in the selective 1,2 migration of the original endo substituent of the reactant.
1999
Blancafort, L., Adam, W., González, D., Olivucci, M., Vreven, T., Robb, M.A. (1999). Theoretical Study of the 1,2 Rearrangement of Housane Radical Cations:  Key Role of a Transient Cyclopentane-1,3-diyl Intermediate. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 121(45), 10583-10590 [10.1021/ja991441p].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11365/32713
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