Metalic tin (Sn) is oxidised to its maximum oxidation state by `KMnO_4` and `K_2Cr_2O_7` separately in the presence of HCl. Calculate the ratios of the volumes of decimolar solutions of `KMnO_4` and `K_2Cr_2O_7` that would be reduced by 1.0 g of Sn (Atomic weight of `Sn=118.6`).

Metalic tin (Sn) is oxidised to its maximum oxidation state by `KMnO_4

1.	Metalic tin (Sn) is oxidised to its maximum oxidation state by `KMnO_4` and `K_2Cr_2O_7` separately in the presence of HCl. Calculate the ratios of the volumes of decimolar solutions of `KMnO_4` and `K_2Cr_2O_7` that would be reduced by 1.0 g of Sn (Atomic weight of `Sn=118.6`).
Answer» Sn is oxidised to `+4` oxidation state (maximum oxidation state of `Sn=+4`) `SntoSn^(+4)+4e^(-)(n=4)` `[5e^(-)+MnO_4^(ɵ)toMn^(2+)](n=6)` Equivalent od `Sn=("Weight")/(Ew)=(1.0)/((118.6)/(4))=(4)/(118.6)Eq` `Sn-=MnO_4^(ɵ)` `Eq-=Eq` `(4)/(118.6)-=0.1xx5` (n-factor)`xxV(L)` `V_(MnO_4^(ɵ))=(4)/(118xx0.1xx5)=(4)/(59.3)=0.067L` `Sn-=Cr_2O_7^(2-)` `Eq-=Eq` `(4)/(118.6)-=0.1xx6` (n-factor)`xxV(L)` `V_(Cr_2O_7^(2-))=(4)/(118.6xx0.1xx6)=(4)/(71.16)=0.057L` Alternatively `(V_(MnO_4^(ɵ)))/(V_(Cr_2^(2-)))=(6)/(5)=6:5(("f-factor " Cr_2O_7^(2-))/("n-factor of "MnO_4^(ɵ)))` Since the same equivalent of Sn is reating with 0.1 M of `KMnO_4` and `K_2Cr_2O_7`, the ratios of the volumes of `KMnO_4` and `K_2Cr_2O_7` reacting with the same equivalent of Sn is inversely proportional to their n-factors.

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Metalic tin (Sn) is oxidised to its maximum oxidation state by `KMnO_4` and `K_2Cr_2O_7` separately in the presence of HCl. Calculate the ratios of the volumes of decimolar solutions of `KMnO_4` and `K_2Cr_2O_7` that would be reduced by 1.0 g of Sn (Atomic weight of `Sn=118.6`).

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