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Exercises · 9.3

Q.Account for the following:

(i) pKb of aniline is more than that of methylamine.
(ii) Ethylamine is soluble in water whereas aniline is not.
(iii) Methylamine in water reacts with ferric chloride to precipitate hydrated ferric oxide.
(iv) Although amino group is o- and p- directing in aromatic electrophilic substitution reactions, aniline on nitration gives a substantial amount of m-nitroaniline.
(v) Aniline does not undergo Friedel-Crafts reaction.
(vi) Diazonium salts of aromatic amines are more stable than those of aliphatic amines.
(vii) Gabriel phthalimide synthesis is preferred for synthesising primary amines.
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✓ Free question

The key idea is that the basicity, solubility, and reactivity of amines are governed by the interplay of resonance, inductive effects, steric hindrance, and solvation. Each observation (i–vii) is explained by a specific structural or electronic property — from the lower basicity of aniline (resonance with the ring) to the stability of aromatic diazonium salts (delocalisation into the π-system).


  1. pKb of aniline is more than that of methylamine

    Basicity is inversely related to pKb — a higher pKb means a weaker base.

    In methylamine, the lone pair on nitrogen is fully available for protonation because the methyl group is electron-donating (+I effect).

    In aniline, the lone pair is delocalised into the benzene ring via resonance, making it less available for protonation.

    Resonance in aniline: NHX2\ce{NH2} lone pair conjugates with the ring → partial double-bond character → reduced electron density on N.

    Hence, aniline is a weaker base (higher pKb) than methylamine.

  2. Ethylamine is soluble in water whereas aniline is not

    Solubility in water depends on hydrogen bonding with water.

    Ethylamine has a small hydrophobic ethyl group and a polar −NHX2\ce{-NH2} group that forms strong H-bonds with water.

    Aniline has a large hydrophobic benzene ring that dominates the molecule’s behaviour — the nonpolar ring disrupts water structure, and the lone pair is less available for H-bonding due to resonance.

    Watch out

    Don’t confuse solubility with basicity — aniline’s poor solubility is due to the size of the hydrophobic aryl group, not just resonance.

  3. Methylamine in water reacts with ferric chloride to precipitate hydrated ferric oxide

    Methylamine is a stronger base than water. In aqueous solution, it accepts a proton from water:

CHX3NHX2+HX2O⇌CHX3NHX3X++OHX−\ce{CH3NH2 + H2O <=> CH3NH3+ + OH-}

The released OHX−\ce{OH-} ions react with FeX3+\ce{Fe^{3+}} to form a reddish-brown precipitate of hydrated ferric oxide:

FeX3++3 OHX−→Fe(OH)X3↓\ce{Fe^{3+} + 3OH- -> Fe(OH)3 v}

Aniline, being a much weaker base, does not produce enough OHX−\ce{OH-} to cause precipitation.

  1. Although amino group is o- and p- directing, aniline on nitration gives substantial m-nitroaniline

    In strongly acidic conditions (like nitration with HNOX3/HX2SOX4\ce{HNO3/H2SO4}), the amino group gets protonated to form −NHX3X+\ce{-NH3+}.

    The −NHX3X+\ce{-NH3+} group is strongly electron-withdrawing (inductive effect) and meta-directing.

    Tip

    The directing effect of the free −NHX2\ce{-NH2} group is o/p, but under nitration conditions, it’s the protonated form that dominates.

    So the product is a mixture, with a significant amount of meta isomer — a classic exam trap.

  2. Aniline does not undergo Friedel-Crafts reaction

    Friedel-Crafts reactions require a Lewis acid catalyst (e.g., AlClX3\ce{AlCl3}).

    Aniline’s nitrogen lone pair coordinates strongly with AlClX3\ce{AlCl3}, forming a salt-like complex. This deactivates the catalyst and also makes the nitrogen positively charged, which deactivates the ring.

    Watch out

    It’s not that aniline is “too reactive” — it’s that it poisons the catalyst by forming an unreactive complex.

  3. Diazonium salts of aromatic amines are more stable than those of aliphatic amines

    Aromatic diazonium salts (e.g., CX6HX5NX2X+\ce{C6H5N2+}) are stabilised by resonance delocalisation of the positive charge into the benzene ring.

    Aliphatic diazonium salts lack this resonance — they are highly unstable and decompose readily to give carbocations.

    Resonance in benzenediazonium ion: + N≡N\ce{+N#N} group conjugated with the ring → charge spread over ortho and para positions.

  4. Gabriel phthalimide synthesis is preferred for synthesising primary amines

    This method uses phthalimide (which has an acidic N–H) to form a potassium salt, which then undergoes SXN2\ce{S_N2} with an alkyl halide, followed by hydrolysis.

    Tip

    The key advantage: it avoids over-alkylation — a common problem in direct alkylation of ammonia (which gives a mixture of primary, secondary, and tertiary amines).

    Gabriel synthesis gives pure primary amines exclusively.


✓Final answer

The explanations above account for all seven observations, with the core principles being resonance, inductive effects, solvation, and reaction conditions determining the behaviour of amines.

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