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Intext Questions · 7.11

Q.Which of the following is an appropriate set of reactants for the preparation of 1-methoxy-4-nitrobenzene and why?

Intext 7.11 (i): structure(s) drawn as printed in the NCERT textbook, with the labels Br, NO2, +, CH3ONa
Figure
Intext 7.11 (ii): structure(s) drawn as printed in the NCERT textbook, with the labels ONa, NO2, +, CH3Br
Figure
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The key idea is that Williamson ether synthesis works best when the nucleophile is the stronger one. Here, the phenoxide ion (p−O2N−C6H4−ONap-O_2N-C_6H_4-ONa) is a much better nucleophile than methoxide (CH3ONaCH_3ONa) because the nitro group stabilises the negative charge on oxygen, making the phenoxide less basic but still a good nucleophile. The correct set is (ii).

To understand why, we need to revisit the Williamson ether synthesis — the most reliable method for making unsymmetrical ethers like 1-methoxy-4-nitrobenzene. The reaction is an SN2S_N2 displacement: an alkoxide (or phenoxide) ion attacks an alkyl halide. The trick is choosing which fragment becomes the nucleophile and which becomes the electrophile.

  1. The target molecule: 1-methoxy-4-nitrobenzene is p−O2N−C6H4−OCH3p-O_2N-C_6H_4-OCH_3. It has an aryl group (the nitrobenzene ring) and a methyl group attached to oxygen. So we have two possible disconnections:

    • Break the C–O bond to give an aryl halide + methoxide: p−O2N−C6H4−Br+CH3ONap-O_2N-C_6H_4-Br + CH_3ONa (option i)
    • Break the O–CH3_3 bond to give a phenoxide + methyl halide: p−O2N−C6H4−ONa+CH3Brp-O_2N-C_6H_4-ONa + CH_3Br (option ii)
  2. The SN2S_N2 constraint: Aryl halides (like bromobenzene derivatives) do not undergo SN2S_N2 reactions. The carbon attached to bromine is sp2sp^2-hybridised and the aromatic ring blocks backside attack. So option (i) is a non-starter — p−O2N−C6H4−Brp-O_2N-C_6H_4-Br will not react with CH3ONaCH_3ONa via SN2S_N2 to give the ether. Even if you tried harsh conditions, you’d get nucleophilic aromatic substitution (which requires a strong electron-withdrawing group ortho or para and often gives different products), but that’s not Williamson ether synthesis. …

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