Q. acts as an oxidising agent in acidic medium. The number of moles of that will be needed to react with one mole of sulphide ions in acidic solution is
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Start your 14-day free trial to unlock the full solution →In acidic medium, is reduced to (gain of 5 electrons) while is oxidised to (loss of 2 electrons). Balancing the electron transfer shows that 2 moles of react with 5 moles of , so 1 mole of requires mole of . The correct option is (i).
The key to this problem lies in understanding how oxidation states change during the reaction. In redox chemistry, the number of moles of oxidising agent needed depends entirely on how many electrons it can accept versus how many the reducing agent can donate.
Let’s break it down.
- Identify the half-reactions in acidic medium. Permanganate ion () is a powerful oxidising agent. In acidic solution, it gets reduced to the ion. The manganese in has an oxidation state of +7 (since each oxygen is -2, and the overall charge is -1: ). In , the oxidation state is +2. So each gains 5 electrons to become :
- Now look at the sulphide ion. Sulphide ion () is being oxidised. In acidic medium, the most common product is elemental sulphur (). The oxidation state of sulphur in is -2, and in elemental sulphur it is 0. So each loses 2 electrons to become :
- Balance the electrons transferred. The electrons lost by sulphide must equal the electrons gained by permanganate. The smallest common multiple of 5 and 2 is 10. Multiply the permanganate half-reaction by 2:
Multiply the sulphide half-reaction by 5:
- Combine the half-reactions. Adding them gives the net ionic equation:
This tells us the stoichiometric ratio: 2 moles of react with 5 moles of .
- Find the moles of needed for 1 mole of . From the ratio: …
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