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Q.The treatment of ethyl bromide with alcoholic silver nitrite gives : (A) ethyl nitrite (B) nitroethane (C) nitromethane (D) ethene

CBSECBSE Class XII Board 2025MCQ· 1mImportance★★★★★
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Alcoholic silver nitrite (AgNO2\text{AgNO}_2) is an ambident nucleophile — it can attack via either the oxygen or the nitrogen atom. With ethyl bromide, the major product is nitroethane (C–N bond formation) because the nitrogen centre is the more nucleophilic site in the polarisable NO2−\text{NO}_2^- ion, and the silver ion helps drive the reaction via an SN1\text{S}_\text{N}1-like pathway.

  1. Understand the reagent: ambident nucleophile

    Silver nitrite (AgNO2\text{AgNO}_2) dissociates in alcohol to give Ag+\text{Ag}^+ and NO2−\text{NO}_2^- ions. The nitrite ion has two nucleophilic sites: the nitrogen atom (with a lone pair) and the oxygen atoms (with negative charge). This is the classic example of an ambident nucleophile — it can attack an alkyl halide at either site, leading to different products.

  2. Which site attacks?

    In NO2−\text{NO}_2^-, the negative charge is delocalised over the two oxygen atoms, making them harder (less polarisable). The nitrogen atom, though neutral, has a lone pair and is softer — more polarisable. Ethyl bromide is a primary alkyl halide, but the presence of Ag+\text{Ag}^+ changes the game. Silver ion coordinates with the bromide, weakening the C–Br bond and favouring an SN1\text{S}_\text{N}1-like mechanism (even for a primary halide) because AgBr\text{AgBr} precipitates. This creates a carbocation-like transition state, which is more easily attacked by the nitrogen centre (the better nucleophile in a polarisable sense).

  3. The major product: nitroethane

    Attack by the nitrogen atom gives CH3CH2–NO2\text{CH}_3\text{CH}_2\text{–NO}_2, which is nitroethane. This is the major product under these conditions. The oxygen attack would give ethyl nitrite (CH3CH2–O–N=O\text{CH}_3\text{CH}_2\text{–O–N=O}), but that is a minor product here because the nitrogen centre is more nucleophilic in the ambident ion.

  4. Why not the other options? …

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