Given: A hydrocarbon P with formula C4H8 reacts with HCl to give optically active Q with formula C4H9Cl. Then Q reacts with one mole of ammonia to give R with formula C4H11N. Finally, R on diazotization followed by hydrolysis gives S.
Find: Identify P, Q, R and S.
The key clue is that Q is optically active, so it must contain a chiral carbon.
From C4H8, possible alkene isomers include but-1-ene, but-2-ene, and 2-methylpropene.
- But-1-ene + HCl can give CH3CH2CH(Cl)CH3, which is 2-chlorobutane and is chiral.
- But-2-ene + HCl also gives CH3CH2CH(Cl)CH3, which is 2-chlorobutane and is chiral.
- 2-Methylpropene + HCl gives tert-butyl chloride, which is not chiral.
So Q must be 2-chlorobutane, with structure CH3CH2CH(Cl)CH3.
Now ammonia replaces the -Cl group by -NH2, so R is butan-2-amine:
CH3CH2CH(Cl)CH3→CH3CH2CH(NH2)CH3On diazotization followed by hydrolysis, a primary aliphatic amine converts into the corresponding alcohol. Therefore S is butan-2-ol:
CH3CH2CH(NH2)CH3→CH3CH2CH(OH)CH3Matching these with the options, option C is the only complete match.
Therefore, the correct option is C.