Q.Accomplish the following conversions:
You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
Start your 14-day free trial to unlock the full solution →The key idea is to use the functional group transformations and directing effects of substituents on the benzene ring. Each conversion is achieved through a specific sequence of reactions: (i) reduction then diazotisation and substitution;
(ii) nitration, bromination, reduction, diazotisation, then hydrolysis;
(iii) amide formation, then Hofmann rearrangement to aniline directly;
(iv) bromination, diazotisation, then fluorination (Balz-Schiemann);
(v) nucleophilic substitution with cyanide followed by reduction;
(vi) nitration, then reduction;
(vii) acetylation, bromination, deprotection;
(viii) Hofmann rearrangement to aniline, diazotisation and deamination to benzene, then Friedel-Crafts methylation;
(ix) diazotisation, cyanation, hydrolysis, reduction to benzyl alcohol.
Let's walk through each conversion step by step, focusing on the why behind each choice.
(i) Nitrobenzene to benzoic acid
Concept: We need to replace the nitro group () with a carboxyl group (). The nitro group is a strong deactivator and meta-director, but we can first reduce it to an amino group (), which is activating and ortho/para-directing. Then, via diazotisation, we can replace the amino group with a cyano group (), which can be hydrolysed to a carboxylic acid.
-
Reduce nitrobenzene to aniline: Use Sn/HCl or Fe/HCl. The nitro group is reduced to an amino group.
-
Diazotise aniline: Treat with NaNO and HCl at 0-5°C to form the diazonium salt.
-
Replace diazonium with cyano group: Use CuCN (Sandmeyer reaction) or KCN with Cu catalyst.
-
Hydrolyse the nitrile to benzoic acid: Acidic or basic hydrolysis.
A common mistake is to try direct oxidation of nitrobenzene to benzoic acid. That can never work: the group on the ring is a nitrogen substituent, and no oxidation can turn the nitrogen into the carbon — benzoic acid has a seventh carbon that nitrobenzene simply does not have. The carboxyl carbon must be brought in from outside, which is exactly what the of the Sandmeyer step supplies; hydrolysis then converts it to .
(ii) Benzene to m-bromophenol
Concept: We need to introduce a bromine atom and a hydroxyl group () in a meta relationship. Since is strongly activating and ortho/para-directing, we cannot brominate phenol directly to get meta-bromophenol (it would give ortho/para). Instead, we first introduce a meta-directing group (like ), then brominate, then convert the nitro group to hydroxyl.
-
Nitrate benzene: Use conc. HNO and conc. HSO to get nitrobenzene.
-
Brominate nitrobenzene: The nitro group is meta-directing, so bromination gives m-bromonitrobenzene.
-
Reduce the nitro group to amino: Use Sn/HCl.
-
Diazotise and hydrolyse to phenol: Diazotise with NaNO/HCl, then warm with water.
The key insight: to get a meta relationship between two substituents where one is ortho/para-directing, you must first introduce a meta-directing group, then the second substituent, and finally convert the meta-directing group into the desired ortho/para-directing one.
(iii) Benzoic acid to aniline
Concept: We need to replace the carboxyl group () with an amino group (), losing the carbonyl carbon in the process. The classic method is the Hofmann rearrangement of the amide derived from benzoic acid - this converts the amide directly to aniline in one step, with no intermediate alcohol stage.
-
Convert benzoic acid to benzamide: Treat with NH or first make the acid chloride (with SOCl or PCl), then react with NH.
-
Hofmann rearrangement: Treat benzamide with Br and NaOH. The amide loses CO and forms aniline directly.
Hofmann rearrangement:
(iv) Aniline to 2,4,6-tribromofluorobenzene
Concept: We need to introduce three bromine atoms at the 2,4,6 positions (ortho and para to the amino group) and then replace the amino group with fluorine. The amino group is strongly activating and ortho/para-directing, so bromination of aniline gives 2,4,6-tribromoaniline. Then, diazotisation followed by treatment with fluoroboric acid (HBF) gives the fluorobenzene derivative (Balz-Schiemann reaction).
-
Brominate aniline: Treat with excess Br in water. The amino group directs bromine to ortho and para positions, giving 2,4,6-tribromoaniline.
-
Diazotise: Treat with NaNO/HCl at 0-5°C.
-
Replace diazonium with fluorine (Balz-Schiemann reaction): Add HBF to form the diazonium fluoroborate, then heat to decompose it.
Direct fluorination of aniline is not possible; the Balz-Schiemann reaction is the standard method to introduce fluorine onto an aromatic ring.
(v) Benzyl chloride to 2-phenylethanamine
Concept: We need to increase the carbon chain by one carbon and introduce an amino group. The classic method is nucleophilic substitution of the chloride with cyanide, followed by reduction of the nitrile to a primary amine.
-
Nucleophilic substitution with cyanide: Treat benzyl chloride with KCN (or NaCN) in ethanol-water.
-
Reduce the nitrile to a primary amine: Use LiAlH or catalytic hydrogenation (H/Ni) or Na/ethanol.
This is a classic chain-elongation method: alkyl halide -> nitrile -> primary amine (with one extra carbon).
(vi) Chlorobenzene to p-chloroaniline
Concept: We need to introduce an amino group at the para position relative to chlorine. Chlorine is ortho/para-directing but deactivating. Direct nitration of chlorobenzene gives a mixture of ortho and para nitrochlorobenzene, which can be separated. Then reduce the nitro group to amino.
-
Nitrate chlorobenzene: Use conc. HNO and conc. HSO. The major product is p-nitrochlorobenzene (along with some ortho).
(major)
-
Separate the para isomer (by fractional distillation or crystallisation).
-
Reduce the nitro group: Use Sn/HCl or Fe/HCl.
Direct amination of chlorobenzene is not possible under normal conditions. The nitration-reduction route is standard.
(vii) Aniline to p-bromoaniline
Concept: We need to introduce a bromine atom at the para position relative to the amino group. The amino group is strongly activating and ortho/para-directing. Direct bromination of aniline gives 2,4,6-tribromoaniline (all three positions are activated). To get mono-bromination at the para position, we must first protect the amino group (e.g., by acetylation) to reduce its activating power, then brominate, then deprotect.
-
Protect the amino group by acetylation: Treat aniline with acetic anhydride (or acetyl chloride) to form acetanilide.
-
Brominate acetanilide: The acetamido group is still ortho/para-directing but less activating, so bromination gives mainly p-bromoacetanilide.
-
Deprotect: Hydrolyse the amide back to the amine using dilute HCl or NaOH.
Acetylation is a common protecting group strategy to control the degree and position of electrophilic substitution on aniline.
(viii) Benzamide to toluene …
Unlock everything free for 14 days
- Full step-by-step solutions
- Concept-first explanations
- Methods, shortcuts & mistakes
- PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.