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Q.(a) How can acetaldehyde be prepared from acetyl chloride ?

(b) Propanal is more reactive than propanone towards nucleophilic addition reaction. Give reason.
CBSECBSE Class XII Board 2025Subjective· 2mImportance★★★★★
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Acetaldehyde is prepared from acetyl chloride via Rosenmund reduction (H₂/Pd-BaSO₄), which selectively stops at the aldehyde stage. Propanal is more reactive than propanone toward nucleophilic addition because the aldehyde carbonyl carbon is less sterically hindered and more electrophilic due to the absence of an electron-donating alkyl group.


(a) Preparation of acetaldehyde from acetyl chloride

Concept first: Acetyl chloride (CH3COCl\text{CH}_3\text{COCl}) is an acid chloride — a highly reactive derivative of carboxylic acids. To get an aldehyde, we need to replace the chlorine atom with a hydrogen atom while keeping the carbonyl group intact. Direct reduction with a strong reducing agent like LiAlH₄ would over-reduce it to an alcohol. The trick is to use a poisoned catalyst that stops the reaction at the aldehyde stage.

The method: Rosenmund reduction.

  1. Reactants: Acetyl chloride (CH3COCl\text{CH}_3\text{COCl}) is dissolved in a suitable solvent (often dry benzene or toluene).
  2. Catalyst: Palladium metal supported on barium sulfate (Pd-BaSO4\text{Pd-BaSO}_4). The barium sulfate acts as a "poison" that partially deactivates the catalyst.
  3. Hydrogen gas is bubbled through the mixture.
  4. Reaction:

CH3COCl+H2→Pd-BaSO4CH3CHO+HCl\text{CH}_3\text{COCl} + \text{H}_2 \xrightarrow{\text{Pd-BaSO}_4} \text{CH}_3\text{CHO} + \text{HCl}

  1. Why it works: The poisoned catalyst slows down the reduction so that it stops after adding one hydrogen atom to the carbonyl carbon (replacing Cl with H). Without the poison, the aldehyde would be further reduced to ethanol.
Tip

A common alternative is to use lithium aluminium tri-tert-butoxy hydride (LiAlH(OtBu)3\text{LiAlH(O}^t\text{Bu)}_3), a milder reducing agent that also stops at the aldehyde stage. But Rosenmund reduction is the classic exam answer.

Watch out

Do not write LiAlH₄ or NaBH₄ here — they would give ethanol, not acetaldehyde. The key is the poisoned catalyst.


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

Concept first: Nucleophilic addition to a carbonyl involves the nucleophile attacking the electrophilic carbonyl carbon. Two factors control how easily this happens: steric hindrance (how crowded the carbon is) and electronic effects (how positive the carbon is).

Let's compare propanal (CH3CH2CHO\text{CH}_3\text{CH}_2\text{CHO}) and propanone (CH3COCH3\text{CH}_3\text{COCH}_3):

  1. Steric hindrance:
    • In propanal, the carbonyl carbon is attached to one alkyl group (CH3CH2−\text{CH}_3\text{CH}_2-) and one hydrogen atom.
    • In propanone, the carbonyl carbon is attached to two methyl groups (CH3−\text{CH}_3- and CH3−\text{CH}_3-).
    • The two alkyl groups in propanone create more bulk around the carbonyl carbon, making it harder for a nucleophile to approach.
    • Result: Propanal is less hindered, so nucleophiles attack it more easily. …

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