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Exercises · 7.21

Q.Name the reagents used in the following reactions:

(i) Oxidation of a primary alcohol to carboxylic acid.
(ii) Oxidation of a primary alcohol to aldehyde.
(iii) Bromination of phenol to 2,4,6-tribromophenol.
(iv) Benzyl alcohol to benzoic acid.
(v) Dehydration of propan-2-ol to propene.
(vi) Butan-2-one to butan-2-ol.
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The key idea is to match each organic transformation with the specific reagent that achieves it cleanly. The answers are: (i) Acidified KX2CrX2OX7\ce{K2Cr2O7} or KMnOX4\ce{KMnO4},

(ii) PCC (pyridinium chlorochromate),

(iii) Bromine water,

(iv) Acidified KMnOX4\ce{KMnO4},

(v) Concentrated HX2SOX4\ce{H2SO4} at 443 K,

(vi) NaBHX4\ce{NaBH4} or LiAlHX4\ce{LiAlH4}.

Let’s go through each one. The logic here is simple: you need to know which reagent does what, and why. For oxidation, the strength of the oxidising agent and the reaction conditions decide whether you stop at an aldehyde or go all the way to a carboxylic acid. For the others, it’s about recognising characteristic reactions — like how phenol is so reactive that bromine water gives a tribromo product instantly, or how ketones are reduced to secondary alcohols.

1. Oxidation of a primary alcohol to carboxylic acid.

A primary alcohol (R−CHX2OH\ce{R-CH2OH}) can be oxidised in two stages: first to an aldehyde (R−CHO\ce{R-CHO}), then to a carboxylic acid (R−COOH\ce{R-COOH}). To get the acid directly, you need a strong oxidising agent that doesn’t stop at the aldehyde. The classic choices are acidified potassium dichromate (KX2CrX2OX7/HX2SOX4\ce{K2Cr2O7/H2SO4}) or acidified potassium permanganate (KMnOX4/HX2SOX4\ce{KMnO4/H2SO4}). Both are strong enough to push the oxidation all the way.

Tip

In the lab, KX2CrX2OX7/HX2SOX4\ce{K2Cr2O7/H2SO4} is more common because it gives a clear colour change from orange to green as it gets reduced to CrX3+\ce{Cr^{3+}}.

2. Oxidation of a primary alcohol to aldehyde.

Here you want to stop at the aldehyde stage. If you use a strong oxidising agent, it will over-oxidise. So you need a milder, specific reagent. The go-to is PCC (pyridinium chlorochromate, CX5HX5NHX+CrOX3ClX−\ce{C5H5NH+CrO3Cl-}) in anhydrous conditions (e.g., in dichloromethane). It oxidises primary alcohols to aldehydes without touching them further. Another option is the Swern oxidation (DMSO + oxalyl chloride), but PCC is the standard for exams.

Watch out

Never use KX2CrX2OX7\ce{K2Cr2O7} or KMnOX4\ce{KMnO4} here — they will give the carboxylic acid, not the aldehyde.

3. Bromination of phenol to 2,4,6-tribromophenol.

Phenol is highly activated towards electrophilic substitution because the –OH group donates electrons into the ring. Bromine water (BrX2/HX2O\ce{Br2/H2O}) is a mild source of electrophilic bromine. The reaction is so fast that all three ortho and para positions get substituted instantly, giving a white precipitate of 2,4,6-tribromophenol. No catalyst is needed.

CX6HX5OH+3 BrX2→2,4, 6-BrX3CX6HX2OH+3 HBr\ce{C6H5OH + 3Br2 -> 2,4,6-Br3C6H2OH + 3HBr}

4. Benzyl alcohol to benzoic acid.

Benzyl alcohol (CX6HX5CHX2OH\ce{C6H5CH2OH}) is a primary alcohol attached to a benzene ring. To oxidise it to benzoic acid (CX6HX5COOH\ce{C6H5COOH}), you need a strong oxidising agent. Acidified potassium permanganate (KMnOX4/HX2SOX4\ce{KMnO4/H2SO4}) works perfectly — it oxidises the –CHX2OH\ce{CH2OH} group all the way to –COOH\ce{COOH}. Note that the benzene ring is unaffected under these conditions. …

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