Problem 57
Question
Write complete balanced half-reactions for (a) oxidation of nitrous acid to nitrate ion in acidic solution, (b) oxidation of \(\mathrm{N}_{2}\) to \(\mathrm{N}_{2} \mathrm{O}\) in acidic solution.
Step-by-Step Solution
Verified Answer
The complete balanced half-reactions for (a) oxidation of nitrous acid to nitrate ion in acidic solution, and (b) oxidation of \(\mathrm{N}_{2}\) to \(\mathrm{N}_{2} \mathrm{O}\) in acidic solution are:
a) HNO2 + 2H+ + 2e⟶ NO3-
b) \(\mathrm{N}_{2}\) + H2O ⟶ \(\mathrm{N}_{2} \mathrm{O}\) + 2H+ + 2e-
1Step 1: Identify the oxidation states of elements in nitrous acid and nitrate ion
Nitrous acid (HNO2) has oxygen with oxidation state -2, hydrogen +1, and nitrogen +3. In nitrate ion (NO3-), oxygen has -2, and nitrogen has +5.
2Step 2: Balance the half-reactions
The nitrogen in nitrous acid is oxidized from +3 to +5. The increase in oxidation state is by 2 units:
HNO2 ⟶ NO3-
3Step 3: Balance the charges using protons (H+) and electrons
Add two H+ ions and two electrons to the reaction to balance the charge:
HNO2 + 2H+ + 2e⟶ NO3-
So, the complete balanced half-reaction is:
HNO2 + 2H+ + 2e⟶ NO3-
b) Oxidation of \(\mathrm{N}_{2}\) to \(\mathrm{N}_{2} \mathrm{O}\) in acidic solution:
4Step 1: Identify the oxidation states of elements in \(\mathrm{N}_{2}\) and \(\mathrm{N}_{2} \mathrm{O}\)
In \(\mathrm{N}_{2}\), the oxidation state of both nitrogens is 0. In \(\mathrm{N}_{2} \mathrm{O}\), the oxidation state of the nitrogen attached to oxygen is +2 and that of the other nitrogen is 0.
5Step 2: Balance the half-reactions
One of the nitrogens in \(\mathrm{N}_{2}\) is oxidized from 0 to +2. The increase in oxidation state is by 2 units:
\(\mathrm{N}_{2}\) ⟶ \(\mathrm{N}_{2} \mathrm{O}\)
6Step 3: Balance the charges using protons (H+) and electrons
Add one water (H2O) on the reactants side to balance the O atoms and 2H+ and 2e- on the products side:
\(\mathrm{N}_{2}\) + H2O ⟶ \(\mathrm{N}_{2} \mathrm{O}\) + 2H+ + 2e-
So, the complete balanced half-reaction is:
\(\mathrm{N}_{2}\) + H2O ⟶ \(\mathrm{N}_{2} \mathrm{O}\) + 2H+ + 2e-
Other exercises in this chapter
Problem 55
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Write a balanced net ionic equation for each of the following reactions: (a) Dilute nitric acid reacts with zinc metal with formation of nitrous oxide. (b) Conc
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Write complete balanced half-reactions for (a) reduction of nitrate ion to \(\mathrm{NO}\) in acidic solution, \((\mathbf{b})\) oxidation of \(\mathrm{HNO}_{2}\
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Write a molecular formula for each compound, and indicate the oxidation state of the group \(5 \mathrm{~A}\) element in each formula: (a) phosphorous acid, (b)
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