Metal sulphate $(A) \xrightarrow{\text{Heat}}$ Oxide $(B) +$ Gas $(C) +$ Gas $(D) \xrightarrow{Cr_2O_7^{2-} / H^{+}}$ Green solution $\xrightarrow[\text{Excess}]{Na_2O_2}$ Yellow solution $(E)$. Compound $A, B, C, D$ and $E$ are respectively:

  • A
    $FeSO_4, Fe_2O_3, SO_3, SO_2, Na_2CrO_4$
  • B
    $Al_2(SO_4)_3, Al_2O_3, SO_3, SO_2, Na_2CrO_4$
  • C
    $CuSO_4, CuO, SO_3, SO_2, Na_2CrO_4$
  • D
    $ZnSO_4, ZnO, SO_3, SO_2, Na_2CrO_4$

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The product $D$ in the following reaction sequence is:

Which one is the oxidising agent in the reaction below?
$2CrO_4^{2-} + 2H^{+} \to Cr_2O_7^{2-} + H_2O$

Assign $A$,$B$,$C$,$D$ from the given type of reaction.
$Na_3PO_4 + Fe_2(SO_4)_3 \longrightarrow FePO_4 \downarrow + Na_2SO_4$

Ferrous sulphate on strong heating gives:

What is the maximum number of moles of electrons taken up by one mole of $NO_3^-$ when it is reduced to the given products?

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