Unit 4: CH04 Syllabus Node

Optical Isomerism & Chirality

Chiral carbon stereocentres, non-superimposable mirror image enantiomers, polarimetry plane-polarised light rotation, and racemic mixture formation for OxfordAQA A-Level Chemistry.

1. Chiral Carbons, Asymmetry & Enantiomers

Stereoisomers possess the same structural formula and the same connectivity of atoms, but their atoms are arranged differently in three-dimensional space. In Unit 2 (CH02), you studied geometric E/Z isomerism. In Unit 4 (CH04), we study optical isomerism.

Key Terminology
  • Chiral Centre (Asymmetric Carbon): A carbon atom that is bonded to four different atoms or groups of atoms. Marked on structural diagrams with an asterisk (C*).
  • Enantiomers: A pair of non-superimposable mirror image stereoisomers.
  • Chirality: The geometric property of a molecule that makes it non-superimposable on its mirror image (just like human left and right hands).

Physical and Chemical Properties of Enantiomers

Enantiomers share identical physical properties (same melting point, boiling point, density, solubility in achiral solvents) and identical chemical reactivity towards achiral reagents.

They differ in only two fundamental ways:

  1. Their effect on the plane of plane-polarised light (one rotates it clockwise, the other rotates it anticlockwise).
  2. Their interaction with other chiral molecules (such as biological enzymes, antibody receptors, and cellular proteins).

2. Tetrahedral Enantiomer Mirror Diagram

The diagram below displays the two optical isomers of 2-hydroxypropanoic acid (lactic acid) reflected across a mirror plane:

Tetrahedral Enantiomer Pair Across a Mirror Plane Mirror Plane C* COOH CH3 OH H (+) Lactic Acid [Rotates clockwise] C* COOH CH3 HO H (-) Lactic Acid [Rotates anticlockwise]

3. Polarimetry & Optical Activity

Standard light consists of electromagnetic waves oscillating in all possible planes perpendicular to the direction of propagation. Passing monochromatic light through a polaroid filter (polariser) allows only waves vibrating in a single plane to pass through, creating plane-polarised light.

Optical Activity When plane-polarised light passes through a solution containing a single enantiomer, the plane of polarization is rotated by a specific angle (alpha):
  • Dextrorotatory (+ or d): Rotates the plane of polarised light clockwise to the right.
  • Laevorotatory (- or l): Rotates the plane of polarised light anticlockwise to the left by the exact same numerical angle.

4. Racemic Mixtures (Racemates) & Planar Carbonyls

Racemic Mixture (Racemate) An equimolar (50:50) mixture containing equal concentrations of both enantiomers. A racemic mixture is optically inactive because the clockwise rotation caused by one enantiomer is completely and exactly canceled out by the equal anticlockwise rotation of the other enantiomer.
Why Nucleophilic Addition to Carbonyls Forms a Racemate

A classic exam question asks why nucleophilic addition of cyanide to ethanal or butanone produces an optically inactive product. You must state:

  1. The carbonyl group (C=O) is planar around the carbonyl carbon (trigonal planar geometry, 120 degree bond angles).
  2. The incoming nucleophile (e.g. CN- or :H-) has an equal 50% probability of attacking from above the plane or from below the plane.
  3. Attack from above produces one enantiomer, while attack from below produces the mirror-image enantiomer in equal amounts.
  4. An equimolar racemic mixture is formed, which exhibits zero net optical rotation.

5. Biological Significance & Pharmaceutical Drug Design

Enzymes and cellular drug receptors are constructed from chiral L-amino acids and have complex 3D chiral binding pockets (lock-and-key model). Consequently, two enantiomers of a drug molecule often have profoundly different pharmacological activities:

Pharmaceutical Drug Active Enantiomer Effect Inactive / Harmful Enantiomer Effect Synthetic & Regulatory Strategy
Thalidomide (R)-enantiomer: effective morning sickness remedy and sedative. (S)-enantiomer: severe teratogen causing catastrophic fetal limb malformations. Withdrawn globally; racemises in vivo. Highlighted mandatory chirality screening for modern pharmaceuticals.
Ibuprofen (S)-enantiomer: potent anti-inflammatory COX inhibitor. (R)-enantiomer: pharmacologically inactive. Sold as racemate because body naturally converts inactive (R) to active (S) in liver.

6. Worked Examples

Worked Example 1: Identifying Chiral Centres
Identify any chiral carbon atoms in the following molecules:
(a) Butan-2-ol: CH3-CH(OH)-CH2-CH3
(b) Pentan-3-ol: CH3-CH2-CH(OH)-CH2-CH3
(c) 2-Chlorobutane: CH3-CH(Cl)-CH2-CH3

Solution:

  • (a) Butan-2-ol: Carbon-2 is bonded to four distinct groups: -H, -OH, -CH3, and -CH2CH3 (ethyl). Therefore, Carbon-2 is a chiral centre and butan-2-ol exhibits optical isomerism.
  • (b) Pentan-3-ol: Carbon-3 is bonded to -H, -OH, and two identical ethyl groups (-CH2CH3). Because two groups are identical, Carbon-3 is achiral. Pentan-3-ol has no optical isomers.
  • (c) 2-Chlorobutane: Carbon-2 is bonded to -H, -Cl, -CH3, and -CH2CH3. Four distinct groups; therefore, Carbon-2 is a chiral centre.
Worked Example 2: Explaining Optical Inactivity of a Synthetic Product
Propanal reacts with acidified potassium cyanide to form 2-hydroxybutanenitrile. Explain why the sample of 2-hydroxybutanenitrile obtained is optically inactive despite containing a chiral carbon.

Step-by-step examination model answer:

  1. The starting material propanal (CH3CH2CHO) has a planar carbonyl group (C=O) at the reaction centre.
  2. The cyanide nucleophile (CN-) has an equal probability of attacking the carbonyl carbon from either side (above or below the plane).
  3. Attacking from one side yields the (+) enantiomer, while attacking from the opposite side yields the (-) enantiomer.
  4. Because both attack pathways are equally likely, an equimolar (50:50) racemic mixture is produced.
  5. The optical rotations of the two enantiomers cancel out completely, leaving the mixture optically inactive.