Correct Answer - D
`MnO_(2)+4HCItoMnCI_(2)+CI_(2)+2H_(2)O^(n)CI_(2)=(2.24)/(22.4)=0.1"mole"`
`{:(,1 "mole"," ",1"mole"),(,87gm,,1 "mole"):}`
1 mole `CI_(2)` produced by 87 gm pure `MnO_(2)`
0.1 "mole" `CI_(2)` "produced by 8.7 gm pure" ` MnO_(2)`
`% "purity" = (8.7)/(10)xx100=87%`
% Impurity `= 13 %`