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Orbitals reaction

A more complete analysis of interacting molecules would examine all of the involved MOs in a similar wty. A correlation diagram would be constructed to determine which reactant orbital is transformed into wfiich product orbital. Reactions which permit smooth transformation of the reactant orbitals to product orbitals without intervention of high-energy transition states or intermediates can be identified in this way. If no such transformation is possible, a much higher activation energy is likely since the absence of a smooth transformation implies that bonds must be broken before they can be reformed. This treatment is more complete than the frontier orbital treatment because it focuses attention not only on the reactants but also on the products. We will describe this method of analysis in more detail in Chapter 11. The qualitative approach that has been described here is a useful and simple wty to apply MO theory to reactivity problems, and we will employ it in subsequent chapters to problems in reactivity that are best described in MO terms. I... [Pg.53]

In one step of a reaction mechanism electrons flow from a site rich in electrons to an electron-deficient site. When you draw a mechanism you must make sure that the electrons flow in one direction only and neither meet at a point nor diverge from a point. One way to do this is to decide whether the mechanism is pushed by, say, a lone pair or an anion or whether it is pulled by, say, a cation, an empty orbital, or by the breaking of a reactive weak Jt bond or o bond. This is not just a device either. Extremely reactive molecules, such as fluorine gas, F2, react with almost anything—in this case because of the very electrophilic F-F o bond (low energy F-F o orbital). Reactions of F2 are pulled by the breaking of the F-F bond. The nearest thing in organic chemistry is probably the reactions of carbon cations such as those formed ... [Pg.130]

One of the problems that the early applications of the MCSCF method faced was the construction of the wave function. It was necessary to keep it short in order to make the calculations feasible. Thus, one had to decide beforehand which where the most important CSFs to include in the Cl expansion. Even if this is quite simple in a molecule like H2 it quickly becomes ambiguous for larger systems. However, the development of more efficient techniques to solve large Cl problems made another approach possible. Instead of having to choose individual CSFs, one could choose only the orbitals that were involved and then make a full Cl expansion in this (small) orbital space. In 1976 Ruedenberg introduced the orbital reaction space in which a complete Cl expansion was used (in principle). All orbitals were optimized—the Fully Optimized Reaction Space— FORS [21]. [Pg.739]

We continue to emphasize chemical reactions early in the book, leaving the more abstract material on orbitals for later chapters. In a course in which many students encounter chemistry for the first time, it seems especially important that we present the chemical nature of matter before we discuss the theoretical intricacies of atoms and orbitals. Reactions are inherently... [Pg.732]

The mechaiiism of the oxidative addition of silanes has been studied in detail. Like the addition of the reaction of silanes occurs by donation of electron density in the H-Si CT-orbital into a metal orbital of u-symmetry and back-donation of electron density from a metal orbital of tr-symmetry into the H-Si a -orbital. Reactions of optically active silanes occur with retention of configuration in the product, the metal occupies the position that the hydrogen occupied in the starting silane (Equation 6.18). Moreover, the oxidative addition has been shown by femtosecond flash photolytic and infrared spectroscopic methods to occur with prior formation of a silane complex, perhaps in parallel with the formation of complexes from slipping of the Cp ring or those resulting from coordination of the triethylsilane through ethyl C-H bonds. [Pg.272]

In the case of the sec-butyl radical, the carbon bearing the unpaired electron is sp hybridized and the unpaired electron lies in the unhybridized 2p orbital. Reaction... [Pg.354]

As illustrated in (8.2), a strong Lewis acid with Ic LP (w a) acceptor orbital will attack ale LF ( b) donor orbital of a Lewis base to yield a 2c dative BD ([Pg.206]


See other pages where Orbitals reaction is mentioned: [Pg.166]    [Pg.23]    [Pg.195]    [Pg.23]    [Pg.130]    [Pg.101]    [Pg.126]    [Pg.119]    [Pg.119]    [Pg.195]    [Pg.119]    [Pg.30]    [Pg.280]    [Pg.346]    [Pg.225]    [Pg.361]    [Pg.351]    [Pg.613]    [Pg.572]   
See also in sourсe #XX -- [ Pg.417 ]




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1.3- Dipolar cycloaddition reactions frontier molecular orbital theory

1.3- dipolar cycloaddition reactions dominant frontier orbitals

1.3- dipolar cycloaddition reactions molecular orbitals

A tt Molecular Orbital Analysis of the Diels-Alder Reaction

Acid-base reactions orbitals

Acid-base reactions, frontier orbitals

Atomic orbitals reactions

Bimolecular reactions, spin-orbit

Bond-breaking reactions, orbital

Coefficients, orbital Diels-Alder reaction

Concerted reaction and orbital symmetry

Concerted reactions orbital symmetry control

Cycloaddition reactions frontier orbital interactions

Cycloaddition reactions frontier orbital theory

Cycloaddition reactions orbital correlation diagram

Cycloaddition reactions orbital symmetry

Cycloaddition reactions orbital symmetry correlation-diagram

Cycloaddition reactions orbital symmetry rules

Diels Alder reaction orbital symmetry analysis

Diels-Alder cycloaddition reaction orbital symmetry control

Diels-Alder reaction frontier orbitals

Diels-Alder reaction molecular orbital considerations

Diels-Alder reaction molecular orbital diagram

Diels-Alder reaction orbital analysis

Diels-Alder reaction orbital correlation diagram

Diels-Alder reaction orbital symmetry

Diels-Alder reaction secondary orbital interactions

Diels-Alder reactions atomic orbital coefficients

Diels-Alder reactions frontier orbital interactions

Diels-Alder reactions frontier-orbital method

Diels-Alder reactions orbital overlaps

Diels-Alder reactions orbitals

Diels-Alder reactions secondary orbital overlap

Diels-Alder reactions unoccupied molecular orbital

Electrocyclic reaction orbital correlation theory

Electrocyclic reactions Frontier Orbital analysis

Electrocyclic reactions orbital symmetry analysis

Electrocyclic reactions orbital symmetry rules

Electrocyclic reactions orbitals symmetry properties

Ethylene reactions, orbital

Ethylene reactions, orbital symmetry

Forbidden reactions formal frontier orbitals

Four-center reaction orbital symmetry

Fragmentation reactions orbital interaction

Frontier Molecular Orbital Theory radical reactions

Frontier Molecular Orbital theory, for Diels-Alder reactions

Frontier molecular orbital theory reactions

Frontier orbital analysis reactions

Frontier orbital interactions in Diels—Alder reaction

Frontier orbital theory, pericyclic reactions

Frontier orbital-controlled reaction

Frontier orbitals and Alder ene reaction

Frontier orbitals and acid-base reactions

Frontier orbitals and conjugate addition reactions

Frontier orbitals in electrocyclic reactions

Frontier orbitals in radical chain reactions

Highest occupied molecular orbital HOMO), pericyclic reaction

Highest occupied molecular orbital cycloaddition reactions and

Highest occupied molecular orbital electrocyclic reactions and

Highest occupied molecular orbital reactions

Lowest unoccupied molecular orbital LUMO), pericyclic reaction

Lowest unoccupied molecular orbital cycloaddition reactions and

Lowest unoccupied molecular orbital reactions

Mobius orbital array in transition states for concerted reactions

Molecular Orbital (MO) approach to acid-base reactions

Molecular Orbital Analysis of the Diels-Alder Reaction

Molecular Orbitals and Organic Chemical Reactions: Reference Edition Ian Fleming

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Molecular Orbitals and Organic Chemical Reactions: Student Edition Ian Fleming

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Molecular orbital calculations bimolecular reactions

Molecular orbital theory chemical reactions

Molecular orbital theory, pericyclic reaction analysis

Molecular orbitals cycloaddition reactions

Molecular orbitals reaction rates

Molecular orbitals second-order reactions

Molecular orbitals symmetry-allowed reactions

Molecular orbitals zero-order reactions

Molecular orbitals, Diels-Alder reactions

Molecular-orbital calculations Diels-Alder reactions

Molecular-orbital calculations addition reactions

Molecular-orbital calculations electrocyclic reactions

Molecular-orbital calculations elimination reactions

Molecular-orbital calculations pericyclic reactions

Molecular-orbital calculations reactions

Nodal properties of tt orbitals and pericyclic reactions

Orbital (MO) approach to acid-base reactions

Orbital Interaction in the Diels-Alder Reaction

Orbital Interactions in Copper-mediated Reactions

Orbital Symmetry Basis for the Stereospecificity of Electrocyclic Reactions

Orbital Symmetry Considerations Related to Photochemical Reactions

Orbital Symmetry Considerations for Photochemical Reactions of Alkenes and Dienes

Orbital controlled reactions

Orbital correlation diagram for electrocyclic reactions

Orbital correlation diagrams electrocyclic reactions

Orbital interactions reactions

Orbital mixing reactions

Orbital reactions

Orbital symmetry and Diels Alder reaction

Orbital symmetry conservation reactions

Orbital symmetry diagrams/rules electrocyclic reactions

Orbital symmetry requirements Diels-Alder reaction

Orbitals and Organic Chemistry Pericyclic Reactions

Orbitals and Organic Chemistry Pericydic Reactions

Orbitals, molecular reactions

Pericyclic reaction frontier orbitals and

Pericyclic reactions frontier molecular orbital theory

Pericyclic reactions frontier orbitals

Pericyclic reactions highest occupied molecular orbital

Pericyclic reactions lowest unoccupied molecular orbital

Pericyclic reactions molecular orbital theory

Pericyclic reactions molecular orbitals

Pericyclic reactions orbital correlation diagrams

Pericyclic reactions orbital correlation theory

Pericyclic reactions orbital phase correlations

Pericyclic reactions orbital symmetry

Pericyclic reactions orbital symmetry conservation

Pericyclic reactions orbital symmetry correlation diagram

QUALITATIVE MOLECULAR ORBITAL THEORY AND PERICYCLIC REACTIONS

Qualitative molecular orbital theory of reactions

Radical chain reaction frontier orbital effects

Radical reactions orbital catalysis

Reactions qualitative molecular orbital theory

Side reactions antibonding orbital

Sigma orbitals reactions

Sigmatropic reactions Frontier Orbital analysis

Symmetry controlled reactions secondary orbital interaction

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