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NCERT Exemplar · Q28

Q.What is the role of HNO3HNO_3 in the nitrating mixture used for nitration of benzene?

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In the nitrating mixture (HNO3HNO_3 + H2SO4H_2SO_4), HNO3HNO_3 acts as the source of the nitronium ion (NO2+NO_2^+), which is the actual electrophile that attacks benzene. The H2SO4H_2SO_4 protonates HNO3HNO_3 to generate NO2+NO_2^+.

The nitration of benzene is a classic example of Electrophilic Aromatic Substitution (EAS). Benzene’s ring is rich in π\pi electrons, making it a nucleophile — it attacks electron-deficient species (electrophiles). But HNO3HNO_3 alone is not a strong enough electrophile to react directly with benzene. You need to generate a much more powerful electrophile: the nitronium ion, NO2+NO_2^+.

Here’s how the mixture works, step by step.

  1. The role of H2SO4H_2SO_4 is to protonate HNO3HNO_3. Concentrated sulfuric acid is a strong acid and a powerful protonating agent. It donates a proton (H+H^+) to the OHOH group of nitric acid:

HNO3+H2SO4→H2NO3++HSO4−HNO_3 + H_2SO_4 \rightarrow H_2NO_3^+ + HSO_4^-

  1. The protonated nitric acid then loses water. The H2NO3+H_2NO_3^+ ion is unstable and spontaneously loses a molecule of water, generating the nitronium ion:

H2NO3+→NO2++H2OH_2NO_3^+ \rightarrow NO_2^+ + H_2O

  1. The NO2+NO_2^+ ion is the actual electrophile.

    It is a strong, positively charged species that is highly electron-deficient at the nitrogen atom. It attacks the benzene ring, forming the arenium ion intermediate (the sigma complex).

  2. The HSO4−HSO_4^- (or water) then deprotonates the arenium ion to restore aromaticity, giving nitrobenzene. …

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