Question

An organic compound $A$ on reacting with $N{H}_3$ gives $B$. On heating $B$ gives $C.C$ in the presence of $KOH$ reacts with $B{r}_2$ to give $C{H}_{3}C{H}_{2}N{H}_2.A$ is

• A. $C{H}_3-\underset{\stackrel{|}{C}{H}_3}{C}H-COOH$
• B. $C{H}_{3}C{H}_{2}C{H}_{2}C{H}_{2}COOH$
• C. $C{H}_{3}C{H}_{2}COOH$
• D. $C{H}_{3}COOH$

Answer 1

Answer: (C)

$A\stackrel{N{H}_3}{\to }B\stackrel{\Delta }{\to }C\stackrel{KOH/Br}{\to }C{H}_{3}C{H}_{2}N{H}_2$
The reaction of $C$ with $KOH/B{r}_2$ to give amine is called Hofmann bromamide reaction. This reaction is given by acid amides only in which
$R-C{H}_2-\stackrel{\underset{||}{O}}{C}-N{H}_2$ group undergoes rearrangement along with the loss of $C{O}_2$ molecule. Thus, the compound $C$ must be acid amide with three carbon atoms. Hence, the compound $C$ is
$C{H}_3-C{H}_2-\stackrel{\underset{||}{O}}{C}-N{H}_2$.
Since, all the options shows that A is an acid and it forms acid amide on reaction with $N{H}_3$. Thus, acid must contain three carbon atoms. Hence, the compound A is $C{H}_{3}C{H}_{2}COOH$. The complete series of reaction can be represented as