The dehydrohalogenation of neopentyl bro...

The dehydrohalogenation of neopentyl bromide with alcoholic KOH mainly gives

2-methyl-1-butene

2-methyl-2-butene

2, 2-dimethyl-1-butene

2-butene

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The correct Answer is:

`CH_(3)-overset(CH_3)overset(|)underset(CH_3)underset(|)C-CH_(2)-Br + underset((alc))(KOH) rarr CH_(3)-overset(CH_3)overset(|)C=CH-CH_(3) + KBr + H_(2)O`
In this reaction `1^@` carbonium ion is formed which rearranges to form `3^@` carbonium ion from which base obstruct proton. Hence 2-methyl-2-butene is formed as a main product.
`underset(1^@ "carbonium less stable")(CH_(3) - overset(CH_3)overset(|)underset(CH_3)underset(|)C-overset(+)(CH_2)) overset("Methyl shift")rarr CH_(3) - overset(CH_3)overset(|)underset(+)C-CH_(2)-CH_(3)`
`overset("Elimination of proton from " beta)overset("carbon which is less hydrogenated")rarr underset("2-Methyl-2- Butene")(CH_3 - overset(CH_3)overset(|)C=CH-CH_(3))`

The dehydrohalogenation of neopentyl bromide with alcoholic KOH mainly gives

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