Balance the following equations in basic medium by ion-electron method and oxidation number methods and identify the oxidising agent and the reducing agent.

N₂H₄(l) + ClO^–₃(aq) → NO(g) + Cl^–(g)

The changes in the oxidation state taking place in the reaction are as shown below : -

Hence, we can infer easily that the oxidation number of N increases from – 2 in N₂H₄ to + 2 in NO and the oxidation number of Cl decreases from + 5 in ClO₃^- to – 1 in Cl– . Hence, in this reaction N₂H₄ is the reducing agent and ClO₃^- is the oxidizing agent.

Solving by Ion–electron method:

The oxidation half equation is:-

The N atoms are balanced as:-

N₂H_4(l)→ 2NO_(g)

The oxidation number is balanced by adding 8 electrons as:-

N₂H_4(l)→ 2NO_(g) + 8e^–

The charge is balanced by adding 8 OH^- ions as:-

The O atoms are balanced by adding 6H₂O as:-

The reduction half equation is:-

The oxidation number is balanced by adding 6 electrons as:-

The charge is balanced by adding 6OH^- ions as:-

The O atoms are balanced by adding 3H₂O as:-

Multiplying the oxidation half reaction by 3 and then adding it to the reduction half reaction multiplied by 4, to get the net balanced reaction equation as:-

Oxidation number method:

Total decrease in oxidation number of N = 2 × 4 = 8 Total increase in oxidation number of Cl = 1 × 6 = 6

On multiplying N₂H₄ with 3 and ClO₃^- with 4 to balance the increase and decrease in O.N., we get:

The N and Cl atoms are balanced as:-

The O atoms are balanced by adding 6H₂O to the required balanced equation:-