JoVE Logo

S'identifier

15.6 : Stereochemical Effects of Enolization

The chiral α-carbon of the carbonyl compound is the stereocenter of the molecule. As shown in the figure below, when such a carbonyl compound undergoes racemization under an acidic or basic condition, an achiral enol is formed.

Figure1

Under an acidic medium, an oxygen atom of the carbonyl group is protonated with simultaneous removal of the α-hydrogen, giving an enol.

Alternatively, in the basic medium, the removal of α-hydrogen generates a resonance-stabilized enolate. Next, the protonation of the enolate oxygen gives an enol. It is to be noted that deprotonation of a carbonyl compound to form enol is favored when the C(α)–H(α) and C=O bonds are perpendicular to each other, allowing the overlap of σ orbital and π orbital.

Since the enol alkene has planar geometry, the incoming electrophilic proton can attack the molecule either from the top or the bottom of the plane with the same probability, resulting in a racemic mixture of enantiomers. In this racemic mixture, the stereochemistry of one of the enantiomers is retained while it is inverted for the other.

Tags

Stereochemical EffectsEnolizationChiral CarbonCarbonyl CompoundRacemizationAchiral EnolAcidic MediumBasic MediumEnolateProtonationDeprotonationC H BondsC O BondsPlanar GeometryElectrophilic AttackRacemic MixtureEnantiomers

Du chapitre 15:

article

Now Playing

15.6 : Stereochemical Effects of Enolization

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.0K Vues

article

15.1 : Réactivité des énols

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K Vues

article

15.2 : Réactivité des ions énolates

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.4K Vues

article

15.3 : Types d’énols et d’énolates

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.5K Vues

article

15.4 : Conventions du mécanisme énologique

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.0K Vues

article

15.5 : Formation régiosélective des énolates

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.5K Vues

article

15.7 : α-halogénation d’aldéhydes et de cétones catalysée par un acide

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.5K Vues

article

15.8 : α-halogénation des aldéhydes et des cétones promue par une base

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.3K Vues

article

15.9 : Halogénation multiple des méthylcétones : réaction haloforme

α-Carbon Chemistry: Enols, Enolates, and Enamines

1.9K Vues

article

15.10 : α-halogénation des dérivés de l’acide carboxylique : aperçu

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.2K Vues

article

15.11 : α-bromation des acides carboxyliques : réaction Hell-Volhard-Zelinski

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K Vues

article

15.12 : Réactions des composés α-halocarbonyles : substitution nucléophile

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.2K Vues

article

15.13 : Nitrosation des énols

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.4K Vues

article

15.14 : Formation de liaisons C-C : aperçu de la condensation Aldol

α-Carbon Chemistry: Enols, Enolates, and Enamines

13.4K Vues

article

15.15 : Réaction d’addition d’aldol catalysée par une base

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.1K Vues

See More

JoVE Logo

Confidentialité

Conditions d'utilisation

Politiques

Recherche

Enseignement

À PROPOS DE JoVE

Copyright © 2025 MyJoVE Corporation. Tous droits réservés.