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Q.Which of the following reagent is used to distinguish between (C2H5)2NH(C_2H_5)_2NH and (C2H5)3N(C_2H_5)_3N ? (A) CHCl3+KOHCHCl_3 + KOH (B) C6H5SO2ClC_6H_5SO_2Cl (C) Conc. HCl+ZnCl2HCl + ZnCl_2 (D) NaOH+I2NaOH + I_2

CBSECBSE Class XII Board 2026MCQ· 1mImportance★★★★★
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Hinsberg's reagent (C6H5SO2ClC_6H_5SO_2Cl) is used to distinguish between secondary and tertiary amines because secondary amines react to form an alkali-insoluble sulfonamide, while tertiary amines do not react. The correct option is (B).

Amines are organic compounds derived from ammonia (NH3NH_3) where one or more hydrogen atoms are replaced by alkyl or aryl groups. They are classified as primary (1∘1^\circ), secondary (2∘2^\circ), or tertiary (3∘3^\circ) based on the number of alkyl/aryl groups attached to the nitrogen atom. This structural difference, specifically the number of hydrogen atoms directly bonded to the nitrogen, dictates their chemical reactivity and forms the basis for distinguishing them.

In this problem, we need to differentiate between (C2H5)2NH(C_2H_5)_2NH and (C2H5)3N(C_2H_5)_3N.

  • (C2H5)2NH(C_2H_5)_2NH is diethylamine, a secondary amine, as the nitrogen atom is bonded to two ethyl groups and one hydrogen atom.
  • (C2H5)3N(C_2H_5)_3N is triethylamine, a tertiary amine, as the nitrogen atom is bonded to three ethyl groups and no hydrogen atoms.

The core idea for distinguishing these two lies in finding a reagent that reacts with the N-H bond present in the secondary amine but cannot react with the tertiary amine due to the absence of such a bond.

  1. Analyze the given compounds:

    • (C2H5)2NH(C_2H_5)_2NH is a secondary amine. It has one hydrogen atom directly attached to the nitrogen.
    • (C2H5)3N(C_2H_5)_3N is a tertiary amine. It has no hydrogen atoms directly attached to the nitrogen.
  2. Evaluate option (A): CHCl3+KOHCHCl_3 + KOH (Carbylamine reaction)

    • The carbylamine reaction (also known as isocyanide test) is a characteristic reaction for primary amines (both aliphatic and aromatic).
    • In this reaction, a primary amine reacts with chloroform (CHCl3CHCl_3) and alcoholic potassium hydroxide (KOHKOH) to form an isocyanide (carbylamine), which has a highly unpleasant odor.
    • Example: R−NH2+CHCl3+3KOH→ΔR−NC+3KCl+3H2OR-NH_2 + CHCl_3 + 3KOH \xrightarrow{\Delta} R-NC + 3KCl + 3H_2O
    • Secondary and tertiary amines do not give this test.
    • Therefore, this reagent cannot distinguish between a secondary amine and a tertiary amine, as neither will give a positive test.
  3. Evaluate option (B): C6H5SO2ClC_6H_5SO_2Cl (Hinsberg's reagent)

    • C6H5SO2ClC_6H_5SO_2Cl is benzenesulfonyl chloride, commonly known as Hinsberg's reagent. This reagent is specifically used to distinguish between primary, secondary, and tertiary amines.
    • Reaction with secondary amines: A secondary amine reacts with Hinsberg's reagent to form an N,N-dialkylbenzenesulfonamide.

(C2H5)2NH+C6H5SO2Cl⟶(C2H5)2N−SO2C6H5+HCl(C_2H_5)_2NH + C_6H_5SO_2Cl \longrightarrow (C_2H_5)_2N-SO_2C_6H_5 + HCl

    The product, N,N-diethylbenzenesulfonamide, does not have any acidic hydrogen attached to the nitrogen atom. Therefore, it is insoluble in alkali (like $KOH$ or $NaOH$).
*   **Reaction with tertiary amines:** Tertiary amines do not have any hydrogen atoms attached to the nitrogen. Thus, they cannot undergo nucleophilic substitution with Hinsberg's reagent. They simply act as bases and may form a salt with the reagent if it's acidic, but no sulfonamide is formed.

(C2H5)3N+C6H5SO2Cl⟶No reaction (no sulfonamide formed)(C_2H_5)_3N + C_6H_5SO_2Cl \longrightarrow \text{No reaction (no sulfonamide formed)}

    The tertiary amine remains unreacted and is insoluble in alkali.
*   **Distinction:** When $(C_2H_5)_2NH$ is treated with Hinsberg's reagent, an insoluble product (N,N-diethylbenzenesulfonamide) is formed. When $(C_2H_5)_3N$ is treated with Hinsberg's reagent, no reaction occurs, and the tertiary amine itself is insoluble in the aqueous layer. However, the key is the *formation of a new product* in the case of the secondary amine. The difference in reactivity (reaction vs. no reaction) allows for distinction. …

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