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Dihaloalkane reaction with sodamide/ammonia [closed]

You were correct up to this point, the strong base alcoholic KOH sets off elimination instead of substitution so you will not get an alcohol. Accordingly your products A (presumably propene) and B are correct. The amide/ammonia is an even stronger base than alcoholic KOH and will also produce elimination. With a vicinal dihalide like your B, there is an ...

organic-chemistry reagents

answered Dec 27 '20 at 19:39

Oscar Lanzi

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Tag Info

New answers tagged reagents

Dihaloalkane reaction with sodamide/ammonia [closed]

Tag Info

New answers tagged reagents

Dihaloalkane reaction with sodamide/ammonia [closed]

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