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NCERT Exemplar · Q16

Q.In an electrophilic substitution reaction of nitrobenzene, the presence of nitro group ________. (Note: more than one of the given options may be correct.)

(i) deactivates the ring by inductive effect.
(ii) activates the ring by inductive effect.
(iii) decreases the charge density at ortho and para position of the ring relative to meta position by resonance.
(iv) increases the charge density at meta position relative to the ortho and para positions of the ring by resonance.
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The nitro group is a strong electron-withdrawing group that deactivates the benzene ring via both inductive and resonance effects, directing incoming electrophiles to the meta position. The correct options are (i) and (iii).

The nitro group (−NO2-NO_2) is one of the most powerful deactivating and meta-directing groups in electrophilic aromatic substitution (EAS). To understand why, we need to look at two separate effects: the inductive effect and the resonance effect. These work together, but they influence different parts of the ring in different ways.

  1. Inductive effect: deactivation of the ring.

    Nitrogen and oxygen are both highly electronegative. The nitro group pulls electron density away from the benzene ring through the sigma bonds (the σ-framework). This is a withdrawing inductive effect (often denoted as −I-I).

    The result is that the entire ring becomes less electron-rich — it is deactivated relative to benzene. This makes the ring less reactive toward electrophiles. Option (i) is correct; option (ii) is false.

  2. Resonance effect: charge distribution on the ring.

    The nitro group also participates in resonance with the ring. The nitrogen of −NO2-NO_2 has a formal positive charge, and the two oxygen atoms carry partial negative charges. The key resonance structures show that the nitro group can accept electron density from the ring.

    Draw the resonance forms: the lone pair from the ring carbon attached to the nitro group can form a double bond with nitrogen, pushing the positive charge onto the ring. In these resonance structures, the positive charge appears specifically at the ortho and para positions (relative to the nitro group). The meta position never carries a positive charge in any significant resonance contributor.

    This means that the ortho and para positions have lower electron density than the meta position — they are more positively charged in the resonance hybrid. So the nitro group decreases the charge density at ortho and para positions relative to the meta position. Option (iii) is correct.

  3. What about option (iv)? …

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