`1g` pure iron is dissolved in excess of `H_(2)SO_(4)`. The clear filtrate is made up `100 mL. 10mL` of this solution is treated with `0.1 M KMnO_(4)` solution till whole of the `Fe^(2+)` ions are oxidised to `Fe^(3+)` ions. Now `0.2 g Fe_(2)(SO_(4))_(3)` is dissolved in it. the solution is now treated with `Zn` and `H_(2)SO_(4)`. The volume of `0.1 M KMnO_(4)` used after reducing the solution mixture with `Zn+H_(2)SO_(4)` is:A. `5.572 mL`B. `3.572 mL`C. `4.572 mL`D. `6.572 mL`

`1g` pure iron is dissolved in excess of `H_(2)SO_(4)`. The clear filt

1.	`1g` pure iron is dissolved in excess of `H_(2)SO_(4)`. The clear filtrate is made up `100 mL. 10mL` of this solution is treated with `0.1 M KMnO_(4)` solution till whole of the `Fe^(2+)` ions are oxidised to `Fe^(3+)` ions. Now `0.2 g Fe_(2)(SO_(4))_(3)` is dissolved in it. the solution is now treated with `Zn` and `H_(2)SO_(4)`. The volume of `0.1 M KMnO_(4)` used after reducing the solution mixture with `Zn+H_(2)SO_(4)` is:A. `5.572 mL`B. `3.572 mL`C. `4.572 mL`D. `6.572 mL`
Answer» Meq. of `Fe^(2+)` [form `Fe`]+Meq. of `Fe^(2+)` [from `Fe_(2)(SO_(4))_(3))`]=Meq of `KMnO_(4)` `1/56xx1000xx10/100+0.2/(400/2)xx1000=0.1xx5xxV` `:. V=([1.786+1])/0.5=5.572 mL`

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