Organic Chemistry And Reaction Mechanisms Codexery

Enantiomer

Mirror-image molecules that are non-superposable and rotate polarized light.

Enantiomer

An enantiomer is one of a pair of molecular entities that are mirror images of each other and non-superposable, a relationship known as chirality. Enantiomers rotate plane-polarized light in opposite directions, and a mixture of equal amounts of each enantiomer, called a racemic mixture, does not rotate light. They are a fundamental concept in stereochemistry, with significant implications in fields such as pharmacology, where different enantiomers of a compound can have distinct biological effects.

field
Chemistry
known_for
Chirality, optical isomerism, and the R/S, (+)/(-), and D/L naming conventions
key_concept
Mirror-image, non-superposable molecular pairs
related_terms
Racemic mixture, diastereomer, chirality center

Lore & Background

Enantiomers are defined by their chirality, a permanent three-dimensional relationship that prevents one enantiomer from being superposed onto its mirror image without conversion. This property is analogous to left and right hands. Chemical structures with chirality rotate plane-polarized light, with dextrorotatory enantiomers rotating it clockwise and levorotatory ones counterclockwise. The naming conventions for enantiomers include the R/S system based on geometry and Cahn–Ingold–Prelog priority rules, the (+)/(-) system based on optical rotation, and the D/L system based on relationship to glyceraldehyde.

Reader's Guide

The significance of enantiomers extends deeply into chemistry and pharmacology. Because enantiomers can have vastly different biological effects, as seen with thalidomide—where one enantiomer provided sedative effects while the other caused birth defects—the separation or selective synthesis of a single enantiomer is often crucial for drug safety and efficacy. This has led to the practice of chiral switches, where a racemic drug is replaced by an enantiopure version, such as escitalopram replacing citalopram. Enantiopure compounds can improve therapeutic efficacy and may be separately patentable. While enantiomers are nearly identical in energy, theoretical physics predicts a minute energy difference due to parity violation of the weak nuclear force, though this is chemically inconsequential. Methods to obtain pure enantiomers include asymmetric synthesis, enantioconvergent synthesis, and, in rare cases, mechanical separation of crystals, as pioneered by Louis Pasteur with sodium ammonium tartrate.

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