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Q.What is hyper-conjugation? Explain the stability of carbocations on the basis of hyperconjugation. OR Write the IUPAC names of the following organic compounds:

(a) CH3-CH(CH3)-CH(OH)-C(CH3)2-CH3
(b) CH3-CH(OH)-CH(OH)-CH3
(c) a benzene ring bearing a -CH3 group and an -OH group on the adjacent (ortho) carbon
(d) CH3-O-CH2-CH(CH3)-CH3
(e) HO-CH2-CH2-CH2-COOH
Jammu Kashmir JkboseJammu and Kashmir Board of School Education (Class 11) 2025Subjective· 5mImportance★★★★★
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Hyperconjugation delocalises electron density from a neighbouring C-H sigma bond into the empty p-orbital of a carbocation; since a more substituted carbocation has more such C-H bonds available (more alpha hydrogens), it is stabilised more, giving the stability order tertiary > secondary > primary > methyl.

Hyperconjugation: also known as 'no-bond resonance' or sigma-conjugation, this is the delocalisation of electrons from a sigma (C-H or C-C) bond of an atom (usually a carbon bearing hydrogens) that is directly attached to a carbon bearing a positive charge (carbocation), a double bond, or an unpaired electron (free radical), into an adjacent empty (or partially filled) p-orbital or pi system. It arises because a C-H sigma bonding orbital that is properly aligned (parallel) with the empty p-orbital can partially overlap with it, allowing some electron density to spread ('delocalise') from the C-H bond into the empty orbital, lowering the overall energy of the system. Since no actual bond is broken in forming these resonance-like structures (only partial electron donation into an empty orbital), this is called 'no-bond resonance.'

Stability of carbocations via hyperconjugation:

A carbocation is an electron-deficient species with an empty p-orbital on the positively charged carbon. Any C-H (or C-C) sigma bond on a carbon directly attached to this cationic carbon (called an alpha-hydrogen / alpha C-H bond) can donate electron density into that empty p-orbital through hyperconjugation, which spreads out (delocalises) the positive charge over a larger volume and lowers the energy (increases stability) of the carbocation.

The number of hyperconjugative structures possible (and hence the degree of stabilisation) increases with the number of alpha C-H bonds available:

  • Methyl cation (CH3+): 0 alpha C-H bonds (no adjacent carbon) -- no hyperconjugation possible -- LEAST stable.
  • Primary carbocation (e.g. CH3-CH2+, ethyl cation): 3 alpha C-H bonds (from the one attached CH3 group). …

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