Mechanism of concerted cycloadditions



I wish to continue the expression of my personal
 opinions on this subject. I have posted a second paper
 in the Pre-Print Server at
 http://preprint.chemweb.com/orgchem/0201002. The paper
 title is ?Playing the Natural Puzzles of Concerted
 Cycloadditions: What Are the Tricks behind the Scene??
 I post here the abstract as some people may be
 interested. My mechanistic opinions are different from
 those published in recent debates (J. Phys. Chem.
 2001, 105, 10943-10947). I wish to see more opinions
 and discussions on this topic.
 Thanks for attention.
 Sengen
 -------
 Abstract?The mystery of electron flow hides deeply
 inside the thermodynamic states along the IRC
 (intrinsic reaction coordinate) of concerted
 cycloaddition reactions. But the well-known
 experimental facts of Michael-type additions of
 alpha,beta-unsaturated carbonyl compounds suggest an
 electron-withdrawing force at the beta-position and a
 subsequent electron-donating force at the
 alpha-position. The similar electron-withdrawing and
 donating forces were also documented experimentally
 for 1,3-dipoles. These two forces are discussed as a
 primary driving force and a complementary driving
 force for thermal concerted Diels-Alder reactions and
 1,3-dipolar cycloadditions. Wave functions
 (Hartree-Fock orbitals, Kohn-Sham orbitals, valance
 bond orbitals, etc.) as mathematical constructs solely
 depend on nuclear positions, while the kinetic
 electron flow is controlled by the force fields of
 reactants. A wave function can not confine an electron
 pair. Each wave function represents an open subsystem
 that exchanges electron resources with its environment
 while a reaction proceeds. The electron flowing motion
 and the change of wave functions along the IRC are two
 independent events. Their logical relationship can not
 be clearly established. It is because of the
 ?non-classical? systems that mathematical constructs
 can not be used to describe the motions of individual
 electron pairs along a reaction path as we can do in
 classical systems. Evaluating unsymmetrical colliding
 structures (far away from the IRC) may provide us an
 opportunity to examine the nucleophilicity and
 electrophicility at the reacting sites of reactants
 for many cycloaddition reactions. The electron flow
 may be described based on intrinsic kinetic driving
 forces and hindrances. The experimentally observed
 interacting forces and those fundamental laws of
 physics are the most important knowledge that should
 be respected in the theoretical formulation.
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