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NCERT Exemplar · Q7

Q.In order to prepare a 1° amine from an alkyl halide with simultaneous addition of one CH2CH_2 group in the carbon chain, the reagent used as source of nitrogen is ____.

(i) Sodium amide, NaNH2NaNH_2
(ii) Sodium azide, NaN3NaN_3
(iii) Potassium cyanide, KCN
(iv) Potassium phthalimide, C6H4(CO)2N−K+C_6H_4(CO)_2N^-K^+
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The key is to use a reagent that both adds a carbon atom and provides a nitrogen that can be reduced to a primary amine. Potassium cyanide (KCN) does exactly this: it replaces the halide with a nitrile (−CN-CN), adding one carbon, and subsequent reduction converts the nitrile to a primary amine with one extra CH2CH_2 group.

The question asks for a reagent that does two things at once: convert an alkyl halide into a primary amine while lengthening the carbon chain by exactly one carbon atom. This is a classic "chain extension" problem in organic synthesis.

Let’s think about what each option does. The goal is to go from R−XR-X to R−CH2−NH2R-CH_2-NH_2. That means we need to insert a CH2CH_2 group between the original carbon and the nitrogen. A direct substitution with ammonia (NH3NH_3) would give R−NH2R-NH_2 — no extra carbon. So we need a reagent that first adds a carbon-containing group, which can later be transformed into an amine.

  1. Option (A) Sodium amide, NaNH2NaNH_2 — This is a strong base, often used for deprotonation or in elimination reactions. It can also act as a nucleophile, replacing the halide with NH2−NH_2^- to give R−NH2R-NH_2. But that gives a primary amine without adding a carbon. So this does not satisfy the "simultaneous addition of one CH2CH_2 group" condition. It’s a dead end here.

  2. Option (B) Sodium azide, NaN3NaN_3 — This is a good nucleophile. It replaces the halide with an azide group (−N3-N_3), giving R−N3R-N_3. Reduction of the azide (e.g., with LiAlH4LiAlH_4 or catalytic hydrogenation) yields R−NH2R-NH_2. Again, no extra carbon. So this also fails the chain-extension requirement.

  3. Option (C) Potassium cyanide, KCN — This is the classic reagent for adding one carbon. The cyanide ion (CN−CN^-) is a strong nucleophile and displaces the halide to form an alkyl cyanide (nitrile): R−X→R−CNR-X \rightarrow R-CN. The nitrile has one more carbon than the original alkyl halide. Then, reduction of the nitrile (e.g., with H2H_2/Ni or LiAlH4LiAlH_4) gives R−CH2−NH2R-CH_2-NH_2 — a primary amine with exactly one extra CH2CH_2 group. This is exactly what the question describes. …

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