Question

The end product in the sequence would be $C_3{H}_{7}OH\underset{{170}^o}{\overset{H_{2}S{O}_4}{\to }}A\stackrel{B{r}_2}{\to }B\underset{KOH}{\overset{Alc.}{\to }}C$

• A. $C{H}_{3}C\equiv CH$
• B. $C{H}_3\underset{\begin{array}{c}|\\ OH\end{array}}{C}=C{H}_2$
• C. $C{H}_2=C=C{H}_2$
• D. $C{H}_3\underset{\begin{array}{c}|\\ OH\end{array}}{\mathrm{CH}}-\underset{\begin{array}{c}|\\ OH\end{array}}{C{H}_2}$

Answer 1

Answer: (A)

$C{H}_{3}C{H}_{2}C{H}_{2}OH\underset{\begin{array}{c}{170}^o\\ (dehydration)\end{array}}{\overset{H_{2}S{O}_4}{\to }}\underset{\begin{array}{c}propene\\ {}^{\prime }{A}^{\prime }\end{array}}{C{H}_{3}CH=C{H}_2}$ $\stackrel{B{r}_2}{\to }\underset{1,2-dibromopropane}{\stackrel{\begin{array}{c}Br\\ |\end{array}}{C{H}_{3}CH}-\underset{\begin{array}{c}|\\ Br\end{array}}{C{H}_2}}\underset{(Dehydrohalogenation)}{\overset{Alc.KOH}{\to }}$ $\underset{\begin{array}{c}propyne\\ {}^{\prime }{C}^{\prime }\end{array}}{C{H}_{3}C\equiv CH}$