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Question of 108

Q.Account for the following:

(i) Ethylamine is soluble in water whereas aniline is not;
(ii) pKbpK_b of aniline is more than that of methylamine;
(iii) Aniline does not undergo Friedel-Crafts reaction. OR Arrange the following in decreasing order of their basic strength: C6H5NH2C_6H_5NH_2, C2H5NH2C_2H_5NH_2, (C2H5)2NH(C_2H_5)_2NH, NH3NH_3. Give equation only for the preparation of primary amines by Hofmann bromamide degradation reaction. What happens on reduction of nitriles (R–C≡NR\text{--}C{\equiv}N) with LiAlH4LiAlH_4? (Give equation only)
Meghalaya MboseMBOSE Meghalaya Intermediate Board 2021Subjective· 3mImportance★★★★★
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Aniline's bulky, hydrophobic ring blocks efficient hydrogen bonding with water and, through resonance, delocalises the nitrogen lone pair (lowering basicity and also poisoning the Friedel–Crafts catalyst) — three related consequences of the same phenyl-ring conjugation. (Alternative: relative base strengths of simple amines, plus two standard named amine-forming reactions.)

(i) Solubility — ethylamine vs aniline:

Lower aliphatic amines like ethylamine, C2H5NH2C_2H_5NH_2, have a small hydrocarbon part and an −NH2-NH_2 group that readily forms hydrogen bonds with water molecules, making them fully miscible with (soluble in) water. Aniline, C6H5NH2C_6H_5NH_2, has a large, hydrophobic benzene ring; although the −NH2-NH_2 group can still hydrogen-bond, the bulky non-polar ring dominates the molecule's overall behaviour, disrupting the water's hydrogen-bond network and giving aniline only very limited (essentially negligible) solubility in water.

(ii) pKbpK_b of aniline vs methylamine:

In methylamine, CH3NH2CH_3NH_2, the methyl group's electron-donating (+I) inductive effect pushes electron density onto nitrogen, increasing the availability of the lone pair for protonation — methylamine is thus a fairly strong base (low pKbpK_b).

In aniline, the lone pair on nitrogen is delocalised into the aromatic ring through resonance (conjugation with the ring's π\pi system), spreading electron density away from nitrogen into the ring. This makes the lone pair much less available to accept a proton, so aniline is a much weaker base than methylamine, reflected in a higher pKbpK_b value for aniline.

(iii) Aniline and Friedel–Crafts reaction:

Aniline is a Lewis base (due to the lone pair on N). The Friedel–Crafts catalyst, AlCl3AlCl_3, is a strong Lewis acid, and it coordinates with the lone pair on the nitrogen of aniline to form a salt/complex, C6H5–N+H2–AlCl3−C_6H_5\text{--}\overset{+}{N}H_2\text{--}AlCl_3^-. This converts the ring-activating −NH2-NH_2 group effectively into a strongly deactivating, electron-withdrawing group (positively charged nitrogen), which makes the ring highly resistant to further electrophilic attack. Since AlCl3AlCl_3 is consumed stoichiometrically this way (rather than acting catalytically), the Friedel–Crafts reaction essentially fails on aniline.

Alternative (Or):

Basicity order (aqueous phase):

(C2H5)2NH>C2H5NH2>NH3>C6H5NH2(C_2H_5)_2NH > C_2H_5NH_2 > NH_3 > C_6H_5NH_2 …

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