When $\mathrm{Cu}^{2+}$ ion is treated with KI , it produces $\mathrm{Cu}_2 \mathrm{I}_2$ white precipitate in the final product.

$$2 \mathrm{Cu}^{2+}+4 \mathrm{I}^{-} \longrightarrow \underset{\text { (White ppt.) }}{\mathrm{Cu}_2 \mathrm{I}_2}+\mathrm{I}_2$$

(In this reaction, $\mathrm{CuI}_2$ is formed which being unstable, dissociates into $\mathrm{Cu}_2 \mathrm{I}_2$ and $\mathrm{I}_2$ ).

Among $\mathrm{Cu}_2 \mathrm{Cl}_2$ and $\mathrm{CuCl}_2, \mathrm{CuCl}_2$ is more stable. Stability of complex can be explained on the basis of stability of oxidation state of copper. Stability of $\mathrm{Cu}^{2+}(a q)$ rather than $\mathrm{Cu}^{+}(a q)$ is due to much more negative value of $\left[\Delta_{\text {hyd }} H^{\mathrm{S}}\right.$ of $\left.\mathrm{Cu}^{2+}(\mathrm{aq})\right]$ than $\mathrm{Cu}^{+}$which more than compensates for the second ionisation enthalpy of Cu .

$\mathrm{MnO}_2$ is the brown compound of Mn which reacts with HCl to give $\mathrm{Cl}_2$ gas. This gas forms an explosive compound $\mathrm{NCl}_3$ when treated with $\mathrm{NH}_3$. Thus, $A=\mathrm{MnO}_2 ; B=\mathrm{Cl}_2 ; C=\mathrm{NCl}_3$ and reactions are as follows

(i) $$\underset{[A]}{\mathrm{MnO}_2}+4 \mathrm{HCl} \longrightarrow \mathrm{MnCl}_2+\underset{[B]}{\mathrm{Cl}_2}+2 \mathrm{H}_2 \mathrm{O} $$

(ii) $\mathrm{NH}_3+\underset{\text { (Excess) }}{3 \mathrm{Cl}_2} \longrightarrow \underset{[\mathrm{C}]}{\mathrm{NCl}_3}+3 \mathrm{HCl}$

Oxygen can form multiple bonds with metals, while fluorine can't form multiple bond with metals. Hence, oxygen has more ability to stabilize higher oxidation state rather than fluorine.

Magnetic moment of any metal ion can be decided on the basis of spin as well as orbital contribution of electron. Due to symmetrical electronic configuration, there is no orbital contribution in $\mathrm{Cr}^{3+}$ ion. However, appreciable orbital contribution takes place in $\mathrm{Co}^{2+}$ ion.