Q.Preparation of alcohols from alkenes involves the electrophilic attack on alkene carbon atom. Explain its mechanism.
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Start your 14-day free trial to unlock the full solution →The preparation of alcohols from alkenes via electrophilic addition proceeds through a two-step mechanism: first, the alkene acts as a nucleophile and attacks an electrophile (like from or ), forming a carbocation intermediate; second, water (or another nucleophile) attacks the carbocation, followed by deprotonation to yield the alcohol. The regioselectivity follows Markovnikov’s rule.
The key to understanding this reaction is to see the alkene not as a passive double bond, but as a region of high electron density — a nucleophile waiting to happen. The electrons are loosely held and easily polarised, making them an attractive target for any electron-deficient species (an electrophile). When an acid like sulphuric acid () is used, the electrophile is the proton (). The entire process is a classic electrophilic addition, but with water as the final nucleophile, giving an alcohol instead of a haloalkane.
Let’s walk through the mechanism step by step.
- Protonation of the alkene (the slow, rate-determining step) The bond of the alkene attacks a proton from the acid ( or ). This forms a bond between one carbon and the hydrogen, while the other carbon is left with a positive charge — a carbocation intermediate. Why does this happen? The electrons are basic; they seek a positive centre. The proton is the simplest electrophile. For a generic alkene like propene (), the proton adds to the less substituted carbon (the one with more hydrogens) because that gives the more stable carbocation (tertiary > secondary > primary). This is Markovnikov’s rule in action.
If the proton added to the other carbon, we’d get a primary carbocation (), which is much less stable and forms much more slowly.
- Nucleophilic attack by water The carbocation is highly reactive and electron-deficient. Water, with its lone pairs on oxygen, acts as a nucleophile and attacks the positively charged carbon. This forms a protonated alcohol (an oxonium ion).
Notice that the oxygen now bears a positive charge because it donated a lone pair.
- Deprotonation to give the alcohol The oxonium ion is acidic (the bond is weakened by the positive charge). A nearby water molecule (or the conjugate base of the acid, like ) abstracts a proton, regenerating the acid catalyst and yielding the neutral alcohol.
The can then go on to protonate another alkene molecule, making the process catalytic in acid. …
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