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NCERT Exemplar · Q39

Q.Predict the product of reaction of aniline with bromine in non-polar solvent such as CS2CS_2.

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In a non-polar solvent like CS2CS_2, the nucleophilic power of the aniline nitrogen is suppressed, so bromination occurs selectively at the para position via electrophilic aromatic substitution, giving p-bromoaniline as the major product.

The key here is understanding how the solvent changes the reaction pathway. Aniline (C6H5NH2C_6H_5NH_2) is a highly activated aromatic ring because the lone pair on nitrogen donates electron density into the ring through resonance. In polar solvents (like water or acetic acid), this lone pair is fully available, making the ring so reactive that bromination happens rapidly at both ortho and para positions, often giving a tribromo product (2,4,6-tribromoaniline). But in a non-polar solvent like carbon disulfide (CS2CS_2), the story is different.

Why? Because in non-polar solvents, the amino group's lone pair is not protonated and remains free, but the solvent does not stabilize any charged intermediates. More importantly, the reaction is carried out under controlled, mild conditions — typically using bromine in CS2CS_2 at low temperature. This slows down the reaction and allows the most stable monosubstitution product to form.

Let's walk through the reasoning step by step.

  1. Activation by the amino group

    The —NH2—NH_2 group is a strong ortho/para director. Its lone pair conjugates with the benzene ring, increasing electron density at the ortho and para positions. This makes the ring much more reactive than benzene toward electrophilic attack.

  2. The role of the solvent

    In polar protic solvents, the amino group can get protonated to —NH3+—NH_3^+, which is a strong deactivating group. But in CS2CS_2, no protonation occurs. However, the non-polar solvent does not help stabilize the highly polar transition state of electrophilic substitution. This means the reaction is slower and more selective.

  3. Steric hindrance at ortho positions

    The ortho positions are adjacent to the bulky —NH2—NH_2 group. In a slow, controlled reaction, the electrophile (Br+Br^+) preferentially attacks the less hindered para position. The ortho attack is disfavored due to steric crowding.

  4. Monosubstitution is the goal …

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