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Q.Assertion (A) : −NH2-NH_2 group is o- and p-directing in electrophilic substitution reactions. Reason (R) : Aniline cannot undergo Friedel-Crafts reaction. (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.

CBSECBSE Class XII Board 2023MCQ· 1mImportance★★★★★
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The −NH2-NH_2 group is strongly activating and ortho/para-directing due to resonance donation. Aniline fails in Friedel-Crafts reactions because the Lewis acid catalyst coordinates with the lone pair on nitrogen, deactivating the ring and causing side reactions. Both statements are true, but the reason does not explain the directing effect — it is a separate consequence of the same property. Hence, option (B) is correct.


The heart of this question lies in understanding Electrophilic Aromatic Substitution (EAS) — specifically, how substituents already on a benzene ring influence where the next group goes, and whether the reaction even proceeds.

The −NH2-NH_2 group (amino group) is one of the strongest activating groups known. Why? Because the nitrogen atom has a lone pair of electrons that can be delocalised into the benzene ring via resonance. This pushes electron density onto the ring, especially at the ortho and para positions relative to the nitrogen. An electrophile (like NO2+NO_2^+, Br+Br^+, etc.) is attracted to these electron-rich sites. So the directing effect is a direct consequence of resonance stabilisation of the intermediate carbocation.

Now, the Reason statement: aniline (the compound with −NH2-NH_2 on benzene) does not undergo Friedel-Crafts reactions. Friedel-Crafts alkylation or acylation uses a Lewis acid catalyst like AlCl3AlCl_3 or FeCl3FeCl_3. The problem is that the lone pair on nitrogen is basic — it coordinates strongly with the Lewis acid, forming a salt. This does two things: it consumes the catalyst, and it turns the −NH2-NH_2 group into a strongly deactivating, meta-directing group (like −NH3+-NH_3^+). The reaction either fails or gives messy products. So the Reason is true.

But does this failure explain why −NH2-NH_2 is ortho/para-directing? No. The directing effect is a property of the free −NH2-NH_2 group under normal EAS conditions (like nitration, halogenation, sulfonation). The Friedel-Crafts failure is a separate issue — a practical limitation caused by the basicity of the amino group. The two statements are related (both stem from the lone pair), but one does not cause the other.

Let’s walk through the reasoning step by step.

  1. Assertion (A) is true. The −NH2-NH_2 group is indeed ortho- and para-directing. The resonance structures show that the lone pair on nitrogen can be donated into the ring, creating negative charge density at the ortho and para positions. Attack by an electrophile at these positions leads to a more stable carbocation intermediate (because the positive charge can be delocalised onto the nitrogen). Attack at the meta position does not allow this stabilisation.

  2. Reason (R) is also true. Aniline does not undergo Friedel-Crafts reactions. The Lewis acid catalyst (e.g., AlCl3AlCl_3) forms a complex with the nitrogen lone pair. This complex is electron-withdrawing, deactivates the ring, and often leads to side reactions like polymerisation or tar formation. …

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