Q.Assertion (A) : Aromatic primary amines cannot be prepared by Gabriel phthalimide synthesis. Reason (R) : Gabriel phthalimide synthesis is used for the preparation of primary aliphatic amines. Options : (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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Start your 14-day free trial to unlock the full solution →Gabriel phthalimide synthesis fails for aromatic primary amines because aryl halides do not undergo nucleophilic substitution under the reaction conditions. The reason correctly states that the method is for aliphatic amines, but it does not explain why aromatic amines fail — so both statements are true, but the reason is not the correct explanation.
The key here is to understand why Gabriel phthalimide synthesis works for some amines and not others — and that comes down to the chemistry of the nucleophilic substitution step.
Gabriel phthalimide synthesis is a two-step method: first, phthalimide is treated with alcoholic KOH to form the potassium salt of phthalimide. This salt is a strong nucleophile. In the second step, it attacks an alkyl halide () in an reaction, giving an N-alkylphthalimide. Finally, hydrolysis (or hydrazinolysis) liberates the primary amine.
The critical step is the attack. For this to happen, the carbon bearing the halogen must be able to undergo backside attack — it must be sp³-hybridised and not too sterically hindered. Aryl halides (like chlorobenzene) have the halogen attached directly to an sp² carbon of the benzene ring. Such carbons do not undergo reactions because the p-orbitals of the double bond block the backside approach, and the C–X bond has partial double-bond character due to resonance.
So the assertion is true: you cannot prepare aromatic primary amines (like aniline) this way. The reason is also true: Gabriel phthalimide synthesis is indeed used for aliphatic primary amines. But the reason does not explain why aromatic amines fail — it merely states what the method is used for. The actual explanation lies in the reactivity of aryl halides, not in the classification of the product.
Let’s walk through the logic step by step.
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Understand the assertion.
Assertion (A) says aromatic primary amines cannot be prepared by Gabriel phthalimide synthesis. This is correct. If you try to react potassium phthalimide with chlorobenzene, no reaction occurs under normal conditions. Even if you force the reaction (high temperature, catalyst), the product is not aniline — you get side products.
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Understand the reason.
Reason (R) says Gabriel phthalimide synthesis is used for the preparation of primary aliphatic amines. This is also correct. The classic examples are the preparation of ethylamine, benzylamine, etc. from their respective alkyl halides.
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Check if (R) explains (A). …
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