Q.i) Mention the reagents marked as A - F in the following chemical reactions: [Row 1] CH3COCl --A--> CH3CHO --B (SeO2)--> OHC-CHO --C--> HOCH2-COOH ; [Row 2] CH3COCH2CH3 --D--> CH3COOCH2CH3 --Na/alcohol--> E --Cu/Δ--> F. ii) How will you distinguish chemically between HCOOH and CH3COOH? iii) Arrange the following in increasing order of their reactivity towards nucleophilic addition reaction. C6H5CHO, CH3CHO, C6H5COCH3
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Start your 14-day free trial to unlock the full solution →Row 1: acid chloride -> aldehyde (Rosenmund), -> glyoxal (SeO2), -> glycolic acid (internal Cannizzaro). Row 2: ketone -> ester (Baeyer-Villiger peracid, watermark-obscured) -> ethanol (Na/alcohol) -> acetaldehyde (Cu/heat). Formic acid gives a silver mirror (acetic acid does not); reactivity order C6H5COCH3 < C6H5CHO < CH3CHO.
(i) Reagents A-F
Row 1:
- CH3COCl -> CH3CHO: A = H2 with Pd-BaSO4 (Rosenmund reduction) - controlled reduction of the acid chloride to the aldehyde.
- CH3CHO -> OHC-CHO (glyoxal): B = SeO2 (given on the paper) - selenium dioxide oxidises the -CH3 next to the carbonyl to a second -CHO.
- OHC-CHO -> HOCH2-COOH (glycolic acid): C = dilute NaOH (alkali) - the two aldehyde groups of glyoxal undergo an intramolecular Cannizzaro reaction (one CHO oxidised to -COOH, the other reduced to -CH2OH).
Row 2:
- CH3COCH2CH3 (butan-2-one) -> CH3COOCH2CH3 (ethyl acetate): D = a peroxyacid (e.g. m-CPBA / peracetic acid), Baeyer-Villiger oxidation - an oxygen is inserted next to the carbonyl; the more migratory ethyl group migrates, giving ethyl acetate. (The reagent label over this arrow is obscured by the watermark, but the ketone -> ester conversion is the Baeyer-Villiger reaction and requires a peroxyacid.)
- CH3COOCH2CH3 --Na/alcohol--> E = ethanol, CH3CH2OH - Na/ethanol reduces the ester to alcohol (Bouveault-Blanc reduction).
- CH3CH2OH --Cu/heat--> F = acetaldehyde, CH3CHO - passing ethanol vapour over hot copper dehydrogenates the primary alcohol to the aldehyde.
(ii) Distinguishing HCOOH from CH3COOH
Formic acid (HCOOH) contains an aldehyde-like -CHO group within its structure, so it is a reducing agent; acetic acid is not. Add Tollens' reagent (ammoniacal AgNO3) and warm: HCOOH reduces it to give a bright silver mirror (and CO2), whereas CH3COOH gives no reaction. (Formic acid likewise reduces Fehling's solution to a red Cu2O precipitate and decolourises warm acidic KMnO4; acetic acid does neither.)
(iii) Increasing reactivity toward nucleophilic addition
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