Q.Why is HCl not used to make the medium acidic in oxidation reactions of in acidic medium?
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Start your 14-day free trial to unlock the full solution →The key idea is that is a strong enough oxidising agent to oxidise chloride ions () from HCl to chlorine gas (), which interferes with the intended oxidation reaction. Therefore, HCl is not used to acidify the medium. The correct option is (ii).
Why This Matters: Stability of Oxidation States
When you use as an oxidising agent in acidic medium, the reaction is:
The permanganate ion ( in +7 state) is a very powerful oxidising agent. But the medium itself must not react with — otherwise, you lose the oxidising power to a side reaction instead of using it on your intended target.
HCl is a common strong acid, so you might think it's a natural choice to provide ions. But here's the catch: the chloride ion () in HCl is itself easily oxidised. doesn't discriminate — it will oxidise whatever it can, including the very acid you added.
Step-by-Step Reasoning
1. Identify the nature of in acidic medium
In acidic solution, is one of the strongest common oxidising agents. Its standard reduction potential is high:
This means it can oxidise many substances, including halide ions.
2. Check what happens to chloride ions
Chloride ions () can be oxidised to chlorine gas (). The half-reaction is:
with a standard potential (when written as reduction: , ).
Since , the permanganate ion can easily oxidise to .
3. Write the actual side reaction
When is added to HCl, the following redox reaction occurs:
This consumes both and the acid, producing chlorine gas — a coloured, toxic gas that itself is an oxidising agent.
A common mistake is to think that HCl is avoided simply because it's "reactive" or because is "weaker" — but option (iii) is exactly backwards. is actually the stronger oxidising agent here, which is precisely why it attacks HCl.
4. Evaluate each option
- (i) Both HCl and act as oxidising agents. …
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