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9701 Chemistry · Topics 21 & 35 · AS + A Level

Organic Synthesis Reagent Map — A Level Chemistry 9701 Cheat Sheet

Synthesis questions do not test new chemistry — they test whether you can find a route through everything you already know. This sheet is the complete reagent map: every functional group interconversion in the 9701 syllabus with its reagent and conditions, plus the strategy for planning a route, changing the carbon chain length, and spotting the conversions that need two steps.

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9701 Chemistry · Topics 21 & 35 · AS + A Level
Organic Synthesis — Reagent Map

01 · How to plan a route

1 Count the carbons in start and target. Same number? Then no chain step is needed. One more? Go through a nitrile.

2 Identify the functional group change and pick the reagent from the map below.

3 Work backwards from the target when the forward route is not obvious, and always quote reagent and conditions for each step.

02 · From an alkene

To Reagent and conditions
alkane H₂, Ni, 150 °C
halogenoalkane HBr, room temp
dihalide Br₂, room temp
alcohol steam, H₃PO₄, 300 °C, 60 atm
diol cold dilute acidified KMnO₄
polymer high pressure or catalyst

03 · From a halogenoalkane

To Reagent and conditions
alcohol NaOH(aq), warm
alkene KOH in ethanol, hot
nitrile (+1 C) KCN in ethanol, reflux
amine excess NH₃ in ethanol, heat

04 · From an alcohol

To Reagent and conditions
aldehyde K₂Cr₂O₇ / H⁺, distil off
carboxylic acid K₂Cr₂O₇ / H⁺, reflux
ketone (from 2°) K₂Cr₂O₇ / H⁺, reflux
alkene conc. H₂SO₄, 170 °C
halogenoalkane PCl₅, or HCl / ZnCl₂
ester carboxylic acid, conc. H₂SO₄, reflux

05 · From a carbonyl

To Reagent and conditions
alcohol NaBH₄ or LiAlH₄
carboxylic acid K₂Cr₂O₇ / H⁺, reflux (aldehyde only)
hydroxynitrile (+1 C) NaCN with dilute acid

06 · From an acid or nitrile

Change Reagent and conditions
acid → alcohol LiAlH₄ in dry ether
acid → acyl chloride PCl₅
acid → ester alcohol, conc. H₂SO₄, reflux
nitrile → acid dilute HCl, reflux
nitrile → amine LiAlH₄, or H₂ / Ni

07 · Aromatic routes A2

Change Reagent and conditions
benzene → nitrobenzene conc. HNO₃ / conc. H₂SO₄, 55 °C
nitrobenzene → phenylamine Sn / conc. HCl, then NaOH
benzene → alkylbenzene RCl / AlCl₃
methylbenzene → benzoic acid hot alkaline KMnO₄, then H⁺

08 · Changing the chain length

Add one carbon: halogenoalkane + KCN, or carbonyl + HCN. Both give a nitrile group that can then become –COOH or –CH₂NH₂.

Shorten a chain: vigorous oxidation of an alkene, or oxidation of an alkyl side chain on a ring. These are the only routes the syllabus expects.

09 · Worked example — alkene to ketone

Convert propene into propanone.

Same carbon count, so no nitrile is needed.

1 · HBr, room temperature → 2‑bromopropane
2 · NaOH(aq), warm → propan‑2‑ol
3 · K₂Cr₂O₇ / H⁺, reflux → propanone

Markovnikov puts the group on carbon 2, so the alcohol is secondary and the product is a ketone. Propanoic acid cannot be made from propene at this level — start from propan‑1‑ol instead.

10 · Worked example — chain lengthening

Convert ethanol into propanoic acid.

Three carbons from two, so a nitrile step is required.

1 · PCl₅ (or HCl / ZnCl₂) → chloroethane
2 · KCN in ethanol, reflux → propanenitrile
3 · dilute HCl, reflux → propanoic acid

11 · Purification and yield

Liquids: distillation for a volatile product, or a separating funnel followed by drying with anhydrous CaCl₂ or MgSO₄.

Solids: recrystallise from a suitable solvent, filter under reduced pressure, dry, then check purity by melting point — a sharp value at the literature figure means pure.

12 · Tests that identify a group

Group Test and result
C=C Br₂(aq) decolourised
–OH PCl₅ → steamy HCl fumes
C=O 2,4‑DNPH → orange ppt
–CHO Tollens’ → silver mirror
–COOH Na₂CO₃ → fizzing
CH₃CO– or CH₃CH(OH)– I₂ / NaOH → yellow ppt
halogenoalkane NaOH then HNO₃ and AgNO₃ → ppt

13 · Worked example — three steps

Convert propan‑1‑ol into 1‑aminobutane.

Four carbons from three → one nitrile step.

1 · PCl₅ → 1‑chloropropane
2 · KCN in ethanol, reflux → butanenitrile
3 · LiAlH₄ in dry ether → 1‑aminobutane

Reacting the chloropropane with ammonia instead would give propylamine — one carbon short.

Marks lost here

— Giving a reagent without its conditions, or the wrong solvent for substitution against elimination.

— Ignoring the carbon count and proposing a route that cannot change it.

— Choosing an order that puts a directing group on the ring too early.

— Using reflux where the product must be distilled off, so the aldehyde is over‑oxidised.

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Written and reviewed by Fahad H. AhmadChemistry tutor at Mega Lecture · 10M+ lecture views · Book a free trial class

Organic Synthesis Reagent Map — A Level Chemistry 9701 — Frequently Asked Questions

How do you lengthen a carbon chain in 9701?

Two routes. Add HCN to an aldehyde or ketone to make a hydroxynitrile, or react a halogenoalkane with ethanolic potassium cyanide to make a nitrile. Both add one carbon; the nitrile can then be hydrolysed to a carboxylic acid or reduced to a primary amine.

How should you plan a multi-step synthesis?

Work backwards from the target. Identify its functional group and ask what single reaction could have made it, then repeat until you reach the starting material. Check at each step whether the carbon skeleton has changed — that is usually the constraint that decides the route.

Which conversions cannot be done in one step?

An alkane to an alcohol, a benzene ring to phenylamine, and a ketone to a carboxylic acid all need two or more steps. Recognising these quickly saves time in an exam.

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