

InterviewSolution
Saved Bookmarks
1. |
A bottle of `H_2O_2` is labelled as `10 vol H_2O_2. 112mL` of this solution of `H_2O_2` is titrated against `0.04M` acidified solution of `KMnO_4`. Calculate the volume of `KMnO_4` in terms of litre. |
Answer» Correct Answer - 1 `5.6 vol of H_(2)O_(2)=1N=` `10 vol of H_(2)O_(2)=10/5.6 N` `mEq of H_(2)O_(2)=mEq of MnO_(4)^(ɵ)` `10/5.6xx112-=0.04xx5` (`n`factor)`xxV` `V-=1000 mL =1L` |
|