21.1 Organic synthesis

Syllabus
9701–2028–2029
Topic
21.1
Level
AS

Learning objectives

Read every functional group before predicting a multifunctional molecule

First mark every functional-group connectivity in the structure. For each group, link only a reaction or property from the syllabus, then use the stated reagent and conditions to decide which group actually responds.

Structural feature Syllabus reaction evidence / likely behaviour
C=C decolourises aqueous bromine by addition
halogenoalkane C–X hydrolyses; released X⁻ forms AgX with aqueous AgNO₃/ethanol
primary/secondary alcohol acidified dichromate oxidation, orange → green
aldehyde C=O 2,4-DNPH positive and Tollens’/Fehling’s positive
ketone C=O 2,4-DNPH positive but Tollens’/Fehling’s negative
–COOH reacts with carbonate to release CO₂

Polar O–H and C=O groups create stronger intermolecular attractions than a hydrocarbon region and can raise boiling point; O–H groups can hydrogen bond with water. A larger non-polar carbon skeleton can still reduce water solubility, so consider the whole molecule rather than one label.

A molecule may satisfy more than one test, but the reagent selects the observed reaction. Do not make all groups react simultaneously or import an unlisted reaction to identify a familiar-looking structure.

Plan a multi-step synthesis backward, then verify it forward

  1. Compare target and starting structures: carbon count, functional groups and oxidation level. 2. Work backward one syllabus transformation at a time to a plausible precursor. 3. Reverse the sequence and attach exact reagents, solvent, catalyst, temperature and work-up. 4. Check carbon count and structure after every arrow.

Use KCN substitution only when a one-carbon chain extension is wanted. Use oxidation/reduction, addition, substitution, elimination or hydrolysis when the carbon skeleton should be retained; select apparatus such as distillation or reflux from the required oxidation endpoint.

Step Conversion Reagent and conditions Carbon count
1 bromoethane → propanenitrile KCN in ethanol, heat 2 → 3
2 propanenitrile → propanoic acid dilute acid, heat 3 → 3

Starting from 1-bromopropane in step 1 would give four-carbon butanenitrile, not propanenitrile. A short route is useful only when every transformation and condition is supported by the syllabus.

Audit every synthetic arrow for reaction, conditions and by-products

For each arrow, record: starting functional group → product functional group; reaction type; complete reagent and conditions; intended organic product; and chemically required by-product(s). Then verify atoms, charge and any carbon-count change.

Step Functional-group change Reaction type and conditions By-product / coproduct
1 ethanol → bromoethane substitution with HBr(g) H₂O
2 bromoethane → propanenitrile nucleophilic substitution, KCN in ethanol, heat KBr
3 propanenitrile → propanoic acid hydrolysis, dilute acid and heat NH₄⁺ in acidic solution

Possible by-products follow the chemistry: radical halogenation may continue to further substitutions; elimination may compete with substitution under ethanolic base/heat; an unsymmetrical addition may give a minor regioisomer. Name one only when the given substrate and conditions justify it.

A correct final product does not validate an impossible intermediate. Do not use PBr₃ or another unlisted reagent when an assessed route is required, and do not assign a generic HX by-product to every substitution.