Thermodynamic Enolates

Thermodynamic enolates are the more stable enolate ions formed when carbonyl compounds undergo reversible deprotonation under conditions that allow equilibration. With a strong base, elevated temperature, or extended reaction time, competing enolates interconvert through reprotonation and deprotonation, so the product distribution favors the enolate with greater thermodynamic stability, often the more substituted alkene. This principle contrasts with kinetic enolate formation, which favors the fastest-generated species at low temperature and under sterically controlled conditions. Understanding thermodynamic enolates helps chemists predict regioselectivity and design aldol reactions, alkylations, and other carbon-carbon bond-forming transformations in organic synthesis.

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JoVE Core - Chemistry

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