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Question 130 of 135

Q.(a) Write the mechanism of the following reaction: CH3−CH2−OH→443K, H+CH2=CH2+H2OCH_3-CH_2-OH \xrightarrow{443 K,\ H^+} CH_2=CH_2 + H_2O

(b) Write the equation of the reaction for the preparation of phenol from cumene.
CBSECBSE Class XII Board 2023Subjective· 3mImportance★★★★★
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The dehydration of ethanol to ethene follows an E1 mechanism via a carbocation intermediate, while phenol is industrially prepared from cumene through autoxidation and acid-catalysed cleavage (the cumene process).


(a) Mechanism of Dehydration of Ethanol to Ethene

The reaction CH3−CH2−OH→443K, H+CH2=CH2+H2OCH_3-CH_2-OH \xrightarrow{443 K,\ H^+} CH_2=CH_2 + H_2O is an acid-catalysed dehydration of an alcohol. At 443 K (well above 170°C), the conditions favour elimination over substitution, and the mechanism is E1 (unimolecular elimination) because ethanol is a primary alcohol but the reaction proceeds through a relatively stable carbocation under strongly acidic, high-temperature conditions.

Why E1 and not E2? For primary alcohols, E2 is normally favoured, but here the high temperature and concentrated acid allow the carbocation to form — the loss of water creates a primary carbocation, which is unstable, but the reaction is driven by the high temperature and the fact that the carbocation immediately loses a proton to form the alkene.

Step-by-step mechanism

  1. Protonation of the hydroxyl group The lone pair on oxygen of ethanol attacks a proton from the acid (H+H^+), forming an oxonium ion:

CH3−CH2−O⊕H2CH_3-CH_2-\overset{\oplus}{O}H_2

This makes the OH group a better leaving group (water).

  1. Loss of water to form a carbocation The C–O bond breaks heterolytically, ejecting a water molecule and generating a primary carbocation:

CH3−CH2+CH_3-CH_2^+

This is the rate-determining step (slow step). The carbocation is highly unstable but is stabilised slightly by hyperconjugation from the adjacent methyl group.

  1. Deprotonation to form the alkene A base (water or bisulphate ion) abstracts a proton from the β\beta-carbon (the carbon next to the carbocation), forming a π\pi bond:

H2O+CH2=CH2+H3O+H_2O + CH_2=CH_2 + H_3O^+

The product is ethene.

Watch out

A common mistake is to write an E2 mechanism for this reaction. However, at 443 K with a primary alcohol, the reaction is E1 because the carbocation, though unstable, is formed under forcing conditions. The key clue is the high temperature — E2 would require a strong base, which is absent here.

Tip

The temperature 443 K is critical: below 413 K, ethanol reacts with sulphuric acid to form diethyl ether (substitution). Above 443 K, elimination dominates. Always check the temperature in alcohol dehydration problems.


(b) Preparation of Phenol from Cumene

This is the cumene process (also called the Hock process), an industrial method to produce phenol and acetone from cumene (isopropylbenzene). The reaction proceeds in two stages: autoxidation and acid-catalysed cleavage.

Step 1: Autoxidation of cumene

Cumene is oxidised by air (oxygen) at around 90–130°C, forming cumene hydroperoxide. The reaction is a free-radical chain process:

C6H5−CH(CH3)2+O2→air, heatC6H5−C(CH3)2−OOHC_6H_5-CH(CH_3)_2 + O_2 \xrightarrow{\text{air, heat}} C_6H_5-C(CH_3)_2-OOH …

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