Q.Monochlorination of toluene in sunlight followed by hydrolysis with aq. NaOH yields ____________.
Monochlorination of toluene in sunlight gives benzyl chloride via free-radical substitution at the benzylic position; subsequent hydrolysis with aqueous NaOH replaces the chlorine with -OH, yielding benzyl alcohol. The correct product is benzyl alcohol -- option (iv).
The key here is recognising that sunlight + chlorine triggers a free-radical mechanism, not electrophilic aromatic substitution. Toluene's methyl group has benzylic C-H bonds that are unusually weak, because the resulting radical is resonance-stabilised by the aromatic ring, so chlorine radicals preferentially abstract a benzylic hydrogen rather than substituting on the ring.
- Initiation: Cl2, with sunlight (hv), splits homolytically into 2 Cl radicals.
- Propagation (H-abstraction): C6H5CH3 + Cl(radical) -> C6H5CH2(radical) + HCl -- the benzylic radical is resonance-stabilised by the ring.
- Propagation (chain continuation): C6H5CH2(radical) + Cl2 -> C6H5CH2Cl + Cl(radical) -- giving benzyl chloride as the major product.
Ring-chlorinated products (as in electrophilic aromatic substitution) require a Lewis acid catalyst such as FeCl3. Sunlight alone, with no catalyst, favours the free-radical benzylic pathway instead.
- Hydrolysis: Benzyl chloride, a benzylic halide, reacts with aqueous NaOH by nucleophilic substitution: C6H5CH2Cl + NaOH (aq) -> C6H5CH2OH + NaCl -- giving benzyl alcohol.
Checking the options: (i) o-cresol and (ii) m-cresol are ring-hydroxylated products, which would require electrophilic substitution on the ring, not the free-radical path; (iii) 2,4-dihydroxytoluene is even further from this mechanism; (iv) benzyl alcohol is exactly what forms.
The correct option is (iv) benzyl alcohol.
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