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Q.Assertion (A) : Aliphatic primary amines can be prepared by Gabriel phthalimide synthesis. Reason (R) : Alkyl halides undergo nucleophilic substitution with anion formed by phthalimide. Select the correct answer from the codes given below : (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true.

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Gabriel phthalimide synthesis is a highly effective method for preparing pure primary aliphatic amines because the phthalimide anion undergoes nucleophilic substitution with alkyl halides, and the subsequent hydrolysis yields only primary amines, preventing overalkylation. Both Assertion (A) and Reason (R) are true, and Reason (R) correctly explains Assertion (A).

Gabriel phthalimide synthesis is a classic and very important reaction in organic chemistry, specifically designed for the preparation of primary amines. The key challenge in synthesizing primary amines directly from ammonia and alkyl halides is that the primary amine formed can act as a nucleophile itself, reacting further to produce secondary and tertiary amines, and even quaternary ammonium salts. This leads to a mixture of products that is difficult to separate. Gabriel synthesis elegantly bypasses this problem.

The underlying principle of Gabriel synthesis relies on using a protected form of ammonia (phthalimide) that can only be alkylated once, followed by a reaction that releases the primary amine.

Here's a step-by-step breakdown of the process and the reasoning behind it:

  1. Formation of the Phthalimide Anion:

    Phthalimide is an imide, meaning it has an −NH−-\text{NH}- group flanked by two carbonyl groups. The hydrogen atom attached to the nitrogen is acidic because the resulting anion (phthalimide anion) is resonance-stabilized by the two adjacent carbonyl groups.

    When phthalimide is treated with a strong base, such as potassium hydroxide (KOH\text{KOH}) or sodium ethoxide (NaOEt\text{NaOEt}), it loses this acidic proton to form a stable, negatively charged phthalimide anion.

    Phthalimide+KOH⟶Potassium phthalimide+H2O\text{Phthalimide} + \text{KOH} \longrightarrow \text{Potassium phthalimide} + \text{H}_2\text{O}

    The nitrogen atom in this anion carries a negative charge, making it a strong nucleophile.

  2. Nucleophilic Substitution Reaction:

    The potassium phthalimide (or the phthalimide anion) then reacts with an alkyl halide (R−XR-X, where RR is an aliphatic alkyl group and XX is a halogen like Cl\text{Cl}, Br\text{Br}, or I\text{I}). This is a classic SN2S_N2 (bimolecular nucleophilic substitution) reaction. The nucleophilic nitrogen of the phthalimide anion attacks the electrophilic carbon atom bearing the halogen in the alkyl halide, displacing the halide ion.

    Potassium phthalimide+R−X⟶N-alkylphthalimide+KX\text{Potassium phthalimide} + R-X \longrightarrow N\text{-alkylphthalimide} + \text{KX}

    This step is precisely what Reason (R) describes: "Alkyl halides undergo nucleophilic substitution with anion formed by phthalimide." This reaction incorporates the desired alkyl group (RR) onto the nitrogen atom.

    Watch out

    This SN2S_N2 reaction works best with primary alkyl halides. Secondary alkyl halides may undergo elimination (E2E2) reactions, and tertiary alkyl halides predominantly undergo elimination. Aryl halides (like bromobenzene) do not undergo this nucleophilic substitution reaction under these conditions because the carbon-halogen bond in aryl halides is much stronger and less susceptible to SN2S_N2 attack due to the sp2sp^2 hybridization of the carbon and resonance effects. This is why the assertion specifies "aliphatic primary amines."

  3. Hydrolysis to Yield Primary Amine:

    The NN-alkylphthalimide formed in the previous step is then hydrolyzed. This can be achieved by heating with an aqueous acid (like HCl\text{HCl}) or a base (like NaOH\text{NaOH}), or more commonly and efficiently, by treating it with hydrazine (N2H4\text{N}_2\text{H}_4).

    • Acidic/Basic Hydrolysis: This breaks the two amide bonds, releasing the primary amine (R−NH2R-\text{NH}_2) and phthalic acid (or its salt). …

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