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Q.Ethanol on heating with conc. H2SO4H_2SO_4 at 413 K gives : (A) C2H5OSO3HC_2H_5OSO_3H (B) C2H5−O−CH3C_2H_5-O-CH_3 (C) C2H5−O−C2H5C_2H_5-O-C_2H_5 (D) CH2=CH2CH_2=CH_2

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At 413 K, concentrated sulfuric acid dehydrates ethanol to form diethyl ether via an intermolecular dehydration mechanism. The correct product is diethyl ether, option (C).

The Concept: Nucleophilic Substitution in Alcohol Dehydration

When ethanol is heated with concentrated sulfuric acid, the acid acts as both a catalyst and a dehydrating agent. The key is temperature control — the same reactants give different products at different temperatures. At 413 K (≈140 °C), the reaction favours intermolecular dehydration (between two ethanol molecules), producing an ether. At a higher temperature (443 K, ≈170 °C), intramolecular dehydration (within one molecule) dominates, giving ethene.

The mechanism is a classic nucleophilic substitution (SN2-like) where one ethanol molecule acts as the nucleophile and another, after protonation, becomes the electrophile.

Step-by-Step Reasoning

  1. Protonation of ethanol Concentrated H2SO4H_2SO_4 donates a proton to the hydroxyl group of ethanol:

C2H5OH+H+⇌C2H5OH2+C_2H_5OH + H^+ \rightleftharpoons C_2H_5OH_2^+

This converts the poor leaving group (−OH-OH) into a good one (−OH2+-OH_2^+).

  1. Nucleophilic attack by a second ethanol molecule A second ethanol molecule (the nucleophile) attacks the electron-deficient carbon attached to the protonated hydroxyl:

C2H5OH+C2H5OH2+→[C2H5−O(H)−C2H5]++H2OC_2H_5OH + C_2H_5OH_2^+ \rightarrow [C_2H_5-O(H)-C_2H_5]^+ + H_2O

This is an SN2-like step — the oxygen lone pair of the attacking ethanol displaces water.

  1. Deprotonation to form the ether The oxonium ion intermediate loses a proton to a base (e.g., HSO4−HSO_4^- or water):

[C2H5−O(H)−C2H5]+→C2H5−O−C2H5+H+[C_2H_5-O(H)-C_2H_5]^+ \rightarrow C_2H_5-O-C_2H_5 + H^+

The proton is recycled, regenerating the acid catalyst. …

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