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Q.Write structures of main compounds A and B in each of the following reactions:

(a) C6H5COOH→PCl5A→H2/Pd-BaSO4BC_6H_5COOH \xrightarrow{PCl_5} A \xrightarrow{H_2/Pd\text{-}BaSO_4} B
(b) CH3CN→(ii) H3O+(i) CH3MgBrA→Zn(Hg)/conc. HClBCH_3CN \xrightarrow[(ii)\ H_3O^+]{(i)\ CH_3MgBr} A \xrightarrow{Zn(Hg)/\text{conc. }HCl} B
CBSECBSE Class XII Board 2019Subjective· 2mImportance★★★★★
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This problem tests your understanding of two classic reaction sequences: (a) the conversion of benzoic acid to benzaldehyde via the Rosenmund reduction of an acid chloride, and (b) the conversion of acetonitrile to ethylbenzene via a Grignard addition followed by Clemmensen reduction. The final structures are benzaldehyde for (a) and ethylbenzene for (b).

Let’s break down each reaction sequence step by step, focusing on the why behind each transformation.

(a) C6H5COOH→PCl5A→H2/Pd-BaSO4BC_6H_5COOH \xrightarrow{PCl_5} A \xrightarrow{H_2/Pd\text{-}BaSO_4} B

Concept: Carboxylic acids are not directly reducible to aldehydes — they go straight to alcohols. To stop at the aldehyde, we first convert the acid to a more reactive derivative (an acid chloride), then use a poisoned catalyst that halts reduction at the aldehyde stage.

  1. Step 1: Formation of acid chloride (A)

    PCl5PCl_5 replaces the −OH-OH group of benzoic acid with a chlorine atom. This is a nucleophilic acyl substitution: the PCl5PCl_5 provides chloride ions and activates the carbonyl.

    The product A is benzoyl chloride: C6H5COClC_6H_5COCl.

    Note

    PCl5PCl_5 is preferred here because it works cleanly with carboxylic acids. SOCl2SOCl_2 or PCl3PCl_3 could also be used, but PCl5PCl_5 gives the highest yield.

  2. Step 2: Rosenmund reduction (A → B)

    H2H_2 gas with Pd/BaSO4Pd/BaSO_4 is the Rosenmund catalyst — palladium on barium sulfate, often poisoned with a sulfur compound (like quinoline) to prevent over-reduction.

    The acid chloride is reduced to an aldehyde. The catalyst selectively stops at the aldehyde because the C=OC=O bond in the aldehyde is less reactive than the C−ClC-Cl bond in the acid chloride under these conditions.

    Product B is benzaldehyde: C6H5CHOC_6H_5CHO. …

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