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NCERT Exemplar · Q4

Q.Which of the following is the weakest Brönsted base?

(i) aniline (C6H5–NH2)
(ii) piperidine (a saturated six-membered ring containing one N–H)
(iii) cyclohexylamine (C6H11–NH2)
(iv) CH3NH2 (methylamine)
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Basic strength of an amine depends on how available the nitrogen lone pair is for accepting a proton. In aniline the lone pair is delocalised into the aromatic ring, so it is the poorest proton acceptor of the four - the weakest base.

Concept

A Bronsted base donates a lone pair to H+. The more available and electron-rich the nitrogen lone pair, the stronger the base.

Why the ring matters

In aniline the nitrogen lone pair overlaps with the pi-system of the benzene ring (resonance/conjugation). This spreads the lone pair over the ring, so it is no longer fully available on nitrogen. Aromatic amines are therefore much weaker bases than aliphatic amines.

Comparing the options

  • (ii) piperidine - a saturated cyclic secondary amine; lone pair fully available -> strong base. …

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