Hi guys. I'm memorizing the road maps from destroyer and I am confused when I encountered the reaction of ethylbenzene with K2Cr2O7 and H+. Is the product supposed to be the one on the left or the one on the right? I thought it would be the one on the right because there are 2 carbons coming of, thus, you will still have 2 carbons coming off benzene after the oxidation. OR does K2Cr2O7 acts similarly to KMnO4 where it reacts with the allylic hydrogen to make carboxylic acid?
Orgo: ethylbenzene reacting with K2Cr2O7
- Thread starter imn0tokei
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It would be the one on the left because similar to KMnO4, it oxidizes an alkyl group on a benzene ring into benzoic acid
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The only thing you need for that is a free proton on the benzylic position. It always oxidizes at the benzylic position. Even if there was a straight chain alkane 45 carbons long, only the benzylic would be oxidized and the rest would be "chopped off."
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Oxidation of ethyl benzene with either dichromate and acid...or permanganate and acid work-up both five benzoic acid.
Hope this helps.
Dr. Romano
