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Q.What are disproportionation reactions? Give example.

Telangana TsbieTelangana Board of Intermediate Education (Intermediate 1st Year) 2022Subjective· 4mImportance★★★★★
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Disproportionation is a special redox reaction where one element in a single oxidation state acts as both the oxidising and reducing agent, ending up in two different oxidation states among the products — as seen in the reaction of white phosphorus with hot concentrated NaOH.

Disproportionation reaction: In an ordinary redox reaction, two different elements/species undergo oxidation and reduction — one species (the reducing agent) gets oxidised, and a different species (the oxidising agent) gets reduced. In a disproportionation reaction, however, this happens within a SINGLE element: an element present in one particular oxidation state in the reactant is simultaneously oxidised (to a higher oxidation state) and reduced (to a lower oxidation state), so the same species acts as both the oxidising agent and the reducing agent, and two different oxidation states of that same element appear among the products.

Example: White phosphorus (P₄), in which phosphorus is in the 0 oxidation state, reacts with hot concentrated (boiling) NaOH solution:

P₄(s) + 3NaOH(aq) + 3H₂O(l) → 3NaH₂PO₂(aq) + PH₃(g)

Here:

  • Phosphorus starts at oxidation state 0 in P₄.
  • In the product PH₃ (phosphine), phosphorus is reduced to oxidation state −3. …

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