The hydrolysis of optically active 2-bro...

The hydrolysis of optically active 2-bromobutane with aqueous NaOH result in the formation of :

(`pm`) butan–1–ol

(+) butan–2–ol

(pm) butan–2–ol

(-) butan–2–ol

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The correct Answer is:

Upon the removal of halogen from the compound, a carbocation `CH_3(C^(+)HBr)CH_2CH_3` is formed. As the carbocation is 2 and stable, it will follow `S_N^1` reaction. `S_N^1` reactions yield a racemic mixture of (+) and (-) optically active compound hence option (c) is correct.

The hydrolysis of optically active 2-bromobutane with aqueous NaOH result in the formation of :

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