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Q.Arrange the following in decreasing order of their basic strength: C2H5NH2C_2H_5NH_2, (C2H5)2NH(C_2H_5)_2NH, (C2H5)3N(C_2H_5)_3N, C6H5NH2C_6H_5NH_2

Meghalaya MboseMBOSE Meghalaya Intermediate Board 2026Subjective· 1mImportance★★★★★
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Aqueous basicity of amines balances +I electron release (favours more alkyl groups), steric hindrance to solvation of the protonated ion (disfavours bulky/3° amines), and resonance delocalisation of the lone pair (drastically weakens aniline).

Factors at play

  1. +I effect: each ethyl group pushes electron density onto N, making the lone pair more available and increasing basicity — this alone would predict 3∘>2∘>1∘3^\circ > 2^\circ > 1^\circ.
  2. Steric hindrance to solvation: basicity in water is effectively measured by how well the protonated (R3NH+R_3NH^+) ion is stabilised by H-bonding with water. A bulky, highly alkyl-substituted ammonium ion like (C2H5)3NH+(C_2H_5)_3NH^+ is harder to solvate, which lowers its effective basicity in water — this pulls 3∘3^\circ amines down.
  3. Aromatic ring delocalisation: in aniline, C6H5NH2C_6H_5NH_2, the lone pair on N is delocalised into the benzene ring by resonance, making it far less available for protonation — anilines are always much weaker bases than aliphatic amines. …

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