Q.How will you prepare the following compounds from benzene? You may use any inorganic reagent and any organic reagent having not more than one carbon atom.
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Start your 14-day free trial to unlock the full solution →The key idea is to use benzene's electrophilic substitution to introduce functional groups, then transform them via oxidation, reduction, or hydrolysis -- all using reagents with <=1 carbon. The final compounds are prepared as follows: (i) Friedel-Crafts acylation, haloform oxidation, then esterification;
(ii) direct nitration of benzoic acid (the -COOH group is meta-directing, so this gives the meta isomer directly);
(iii) alkylate benzene to toluene, nitrate toluene (the -CH3 group is ortho/para-directing), separate the para isomer, then oxidize the methyl group to -COOH;
(iv) chloromethylation to benzyl chloride, conversion to the nitrile with KCN, then hydrolysis;
(v) alkylate benzene to toluene, nitrate toluene (methyl directs para), separate the para isomer, then selectively oxidize the methyl group to -CHO (not all the way to -COOH).
Concept and Intuition
Benzene is an aromatic ring that undergoes electrophilic substitution -- not addition -- because its pi-system is too stable to break. To attach a side chain, we use reactions like Friedel-Crafts alkylation/acylation or nitration. Once a group is attached, we can oxidize or reduce it to get the desired product. The constraint 'reagents with <=1 carbon' means we cannot use Grignard reagents with longer chains or complex organometallics; we rely on simple one-carbon units like CH3Cl, HCHO, etc.
A point that decides several of these routes: which existing group is a meta-director and which is an ortho/para-director. -COOH, -CHO and -COCH3 are all electron-withdrawing and meta-directing; -CH3 (and -NH2, after protection) are electron-donating and ortho/para-directing. Whenever the target needs a nitro group PARA to a meta-director like -COOH or -CHO, nitrating that meta-director directly will not work (it gives the meta product) -- the practical route is to build the target via a -CH3 group instead (which sends the new nitro group ortho/para), separate the desired para isomer, and only then oxidize the methyl group into the -COOH or -CHO that was actually wanted.
Step-by-Step Solutions
(i) Methyl benzoate
- Introduce a carbonyl via Friedel-Crafts acylation. React benzene with acetyl chloride (CH3COCl) and anhydrous AlCl3 to form acetophenone (C6H5COCH3).
- Oxidize the methyl ketone to a carboxylic acid. Treat acetophenone with I2/NaOH (haloform-type oxidative cleavage) or alkaline KMnO4 to oxidize -COCH3 to -COOH, giving benzoic acid (C6H5COOH).
- Esterify with methanol. React benzoic acid with CH3OH in the presence of conc. H2SO4 (Fischer esterification) to form methyl benzoate (C6H5COOCH3).
Direct Friedel-Crafts alkylation with CH3Cl to get toluene, then oxidizing the methyl all the way to -COOH, also reaches benzoic acid -- but the acylation-oxidation route above is the cleaner, standard two-step answer.
(ii) m-Nitrobenzoic acid
- First make benzoic acid (as in part i, steps 1-2).
- Nitrate benzoic acid. Treat benzoic acid with a nitrating mixture (conc. HNO3 + conc. H2SO4). The -COOH group is meta-directing, so the nitro group goes predominantly to the meta position, giving m-nitrobenzoic acid directly.
C6H5COOH + HNO3 --H2SO4--> m-O2NC6H4COOH
(iii) p-Nitrobenzoic acid
Nitrating benzoic acid directly (as in part ii) gives overwhelmingly the META isomer, because -COOH is meta-directing -- there is no useful para fraction to isolate that way. To reach the PARA isomer, the nitro group must be introduced while an ortho/para-director is on the ring, and the -COOH built afterward.
- Alkylate benzene to toluene. Benzene + CH3Cl/anhydrous AlCl3 (Friedel-Crafts alkylation) gives toluene (C6H5CH3).
- Nitrate toluene and separate the para isomer. Toluene + HNO3/H2SO4 gives a mixture of o- and p-nitrotoluene (the -CH3 group is ortho/para-directing); separate p-nitrotoluene by fractional distillation/crystallization.
- Oxidize the methyl group. Treat p-nitrotoluene with hot KMnO4/H+ (or alkaline KMnO4 then acidify) to oxidize -CH3 to -COOH, giving p-nitrobenzoic acid.
Do not nitrate benzoic acid and try to separate a 'para fraction' -- the -COOH group's meta-directing effect makes the para isomer a negligible minor product, not a genuine synthetic route. The toluene route above is the actual standard answer.
(iv) Phenylacetic acid
- Introduce a -CH2Cl group via chloromethylation. React benzene with formaldehyde (HCHO) and HCl in the presence of ZnCl2 (Blanc chloromethylation) to form benzyl chloride (C6H5CH2Cl).
- Convert to benzyl cyanide. Treat benzyl chloride with KCN (or NaCN) in aqueous ethanol to get benzyl cyanide (C6H5CH2CN). …
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