A sample of `MnSO_4.4H_2O` is reacted in air to give `Mn_3O_4`. The residue `Mn_3O_4` is dissolved in 100 " mL of " `(N)/(12)FeSO_4` containing `H_2SO_4` The solution reacts completely with 50 " mL of " `KMnO_4`. 25 " mL of " this `KMnO_4` requires 30 " mL of " `(N)/(10)FeSO_4` for complete oxidation determine the amount of `MnSO_4.4H_2O` in the sample.

A sample of `MnSO_4.4H_2O` is reacted in air to give `Mn_3O_4`. The re

1.	A sample of `MnSO_4.4H_2O` is reacted in air to give `Mn_3O_4`. The residue `Mn_3O_4` is dissolved in 100 " mL of " `(N)/(12)FeSO_4` containing `H_2SO_4` The solution reacts completely with 50 " mL of " `KMnO_4`. 25 " mL of " this `KMnO_4` requires 30 " mL of " `(N)/(10)FeSO_4` for complete oxidation determine the amount of `MnSO_4.4H_2O` in the sample.
Answer» `Mn_3O_4+3H_2SO_4to3MnSO_4+3H_2O+O` `underline(2FeSO_4+H_2SO_4+OtoFe_2(SO_4)_3+H_2O)` `underline(Mn_3O_4+4H_2SO_4+2FeSO_4to3MnSO_4+4H_2O+Fe_2(SO_4)_3)` `Mn_3O_4+8H^(o+)+2Fe^(2+)to3Mn^(2+)+2F^(3+)+4H_2O` 25 " mL of " `KMnO_4` requires 30 " mL of " 0.1 N `Fe^(2+)` `50mL` of `KMnO_4` requires 60 " mL of " 0.1 N `Fe^(2+)` Volume of `FeSO_4` used by `Mn_3O_4` `=100-60=40" mL of " 0.1 N Fe^(+2)` `=40xx0.1 m" Eq of "FeSO_4` `=4m" mol of "FeSO_4` `6 m" mol of "MnSO_4` `=6xx10^(-3)xx223g of MnSO_4` `=1.338 g of MnSO_4` [2 m" mol of "`FeSO_4=1 m" mol of "Mn_3O_4) `=3 m" mol of "MnSO_4]`

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The purity of `H_2O_2` in a given sample is `85%.` Calculate the weight of impure sample of `H_2O_2` which requires `10mL` of `M//5 KMnO_4` solution in a titration in acidic mediumA. 2 gB. 0.2 gC. 0.17 gD. 0.15 g
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