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NCERT Exemplar · Q39

Q.Suggest a route to prepare ethyl hydrogensulphate (CH3-CH2-OSO2-OH) starting from ethanol (C2H5OH).

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Ethyl hydrogensulphate forms when ethanol reacts with cold, concentrated sulphuric acid through an electrophilic addition mechanism. The product is CH₃–CH₂–OSO₂–OH, obtained by treating ethanol with conc. H₂SO₄ at low temperature (around 298 K).

The key to this synthesis lies in understanding how alcohols behave with sulphuric acid under different conditions. Sulphuric acid is both a strong acid and a powerful dehydrating agent, but temperature determines which property dominates.

When ethanol meets cold concentrated sulphuric acid, the oxygen atom of the hydroxyl group—with its lone pairs—acts as a nucleophile. The sulphuric acid, being electron-deficient at sulphur, behaves as an electrophile. Rather than losing water to form an alkene (which happens at high temperature), the alcohol undergoes a substitution where the –OH group is replaced by the –OSO₂OH group.

Mechanism and Route

  1. Start with ethanol and cold concentrated H₂SO₄

    The reaction requires concentrated sulphuric acid (typically 95–98%) maintained at low temperature, around 298 K (room temperature or slightly below). Higher temperatures would drive dehydration to ethene instead.

  2. Protonation of the alcohol

    The oxygen of ethanol's hydroxyl group donates a lone pair to a proton from H₂SO₄:

CHX3−CHX2−OH+HX2SOX4→CHX3−CHX2−O+HX2+HSOX4X−\ce{CH3-CH2-OH + H2SO4 -> CH3-CH2-\overset{+}{O}H2 + HSO4^-}

This forms a protonated alcohol (an oxonium ion).

  1. Nucleophilic attack by hydrogensulphate ion The hydrogensulphate anion (HSOX4X−\ce{HSO4^-}) acts as a nucleophile and attacks the protonated ethanol. Water is expelled as a leaving group:

CHX3−CHX2−O+HX2+HSOX4X−→CHX3−CHX2−OSOX2−OH+HX2O\ce{CH3-CH2-\overset{+}{O}H2 + HSO4^- -> CH3-CH2-OSO2-OH + H2O}

Alternatively, you can view this as a direct displacement where the bisulphate ion replaces the hydroxyl group after protonation makes it a better leaving group.

  1. Product isolation …

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