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Q.Give reasons for the following:

(a) Carboxylic carbon is less electrophilic than Carbonyl carbon of aldehydes and ketones.
(b) Propanal is more reactive than Propanone towards addition of HCN.
CBSECBSE Class XII Board 2023Subjective· 2mImportance★★★★★
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The lower electrophilicity of carboxylic carbon arises from resonance donation by the –OH group, which reduces the partial positive charge on the carbonyl carbon. Propanal is more reactive than propanone toward HCN addition because its carbonyl carbon is less sterically hindered and more electrophilic due to the absence of an electron-donating methyl group.


(a) Why carboxylic carbon is less electrophilic than the carbonyl carbon of aldehydes and ketones

The core idea: Electrophilicity of a carbonyl carbon depends on how much positive charge it carries. In carboxylic acids, an extra resonance structure involving the –OH group donates electron density to the carbonyl carbon, making it less positive — and therefore less electrophilic.

Let’s compare the two cases:

  1. In an aldehyde or ketone, the carbonyl group (C=O\ce{C=O}) has two major resonance contributors:

    • The neutral form: RX2C=O\ce{R2C=O}
    • The charge-separated form: RX2CX+−OX−\ce{R2C^{+}-O^{-}}

    The second form places a positive charge on the carbonyl carbon — that’s the electrophilic site. There is no other resonance that can donate electrons to this carbon.

  2. In a carboxylic acid (R−COOH\ce{R-COOH}), the carbonyl group is attached to an –OH group. Now three resonance structures are possible:

    • R−C(=O)−OH\ce{R-C(=O)-OH} (neutral)
    • R−CX+(−OX−)−OH\ce{R-C^{+}(-O^{-})-OH} (carbonyl carbon positive)
    • R−C(=O)−OX−HX+\ce{R-C(=O)-O^{-}H^{+}} (the –OH oxygen donates a lone pair to the carbonyl carbon, forming a C=O\ce{C=O} double bond and leaving the –OH oxygen positive)

    The third structure is crucial: it puts a negative charge on the carbonyl oxygen and a positive charge on the –OH oxygen, while the carbonyl carbon remains neutral. This resonance structure has no contribution from a positively charged carbonyl carbon.

Important

The net effect of resonance in carboxylic acids is that the carbonyl carbon never carries as much positive charge as it does in aldehydes or ketones. The –OH group acts as an electron donor through resonance, reducing the electrophilicity of the carbonyl carbon.

  1. Quantitative evidence: The carbonyl carbon in a carboxylic acid is less deshielded in 13C^{13}\ce{C} NMR (appears at lower chemical shift) compared to that in an aldehyde or ketone, confirming it is less electron-deficient.

Conclusion for (a): The resonance donation from the –OH group in carboxylic acids reduces the partial positive charge on the carbonyl carbon, making it a weaker electrophile than the carbonyl carbon of aldehydes and ketones.


(b) Why propanal is more reactive than propanone toward addition of HCN

The core idea: Nucleophilic addition to a carbonyl group is favoured when the carbonyl carbon is more electrophilic and when the approach of the nucleophile is less hindered. Propanal wins on both counts.

The addition of HCN to a carbonyl compound is a nucleophilic addition reaction:

RX2C=O+HCN→OHX−RX2C(OH)(CN)\ce{R2C=O + HCN ->[OH-] R2C(OH)(CN)}

The rate depends on:

  • Electronic factor: How positive (electrophilic) the carbonyl carbon is.
  • Steric factor: How easily the nucleophile can approach the carbonyl carbon.

Let’s compare propanal (CHX3CHX2CHO\ce{CH3CH2CHO}) and propanone (CHX3COCHX3\ce{CH3COCH3}):

  1. Electronic factor:
    • In propanal, the carbonyl carbon is attached to one alkyl group (CHX3CHX2X−\ce{CH3CH2-}) and one hydrogen.
    • In propanone, the carbonyl carbon is attached to two methyl groups. …

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