The standard reduction potential at 298 K for the following half cells are given below
NO − 3 3 − + 4H+ + 3e- → NO(g) +2H2O E0 = 0.97V
\(V^{2+} (aq) + 2e^-→V\) E0 = -1.19V
\(Fe^{3+}(aq) + 3e^- → Fe\) E0 = -0.04V
\(Ag^+ (aq) + e^- → Ag(s)\) E0 = 0.80V
\(Au^{3+}(aq)+3e^-→Au(s)\) E0 = 1.40V
The number of metal(s) which will be oxidized by \(N0^-_3\) Oin aqueous solution is______.
NO − 3 3 − + 4H+ + 3e- → NO(g) +2H2O E0 = 0.97V
\(V^{2+} (aq) + 2e^-→V\) E0 = -1.19V
\(Fe^{3+}(aq) + 3e^- → Fe\) E0 = -0.04V
\(Ag^+ (aq) + e^- → Ag(s)\) E0 = 0.80V
\(Au^{3+}(aq)+3e^-→Au(s)\) E0 = 1.40V
The number of metal(s) which will be oxidized by \(N0^-_3\) Oin aqueous solution is______.
Correct Answer: 3
Approach Solution - 1
Nitrate Ion Oxidation Analysis
For \( \text{NO}_3^- \) to oxidize a metal, \( \text{NO}_3^- \) must itself be reduced. The given reduction half-reaction is:
\( \text{NO}_3^- + 4\text{H}^+ + 3e^- \rightarrow \text{NO} + 2\text{H}_2\text{O} \qquad E^0 = 0.97 \text{ V} \)
For a metal to be oxidized by \( \text{NO}_3^- \), the overall cell potential (\( E^0_{cell} \)) for the redox reaction must be positive. The cell potential is calculated as:
\( E^0_{cell} = E^0_{reduction} - E^0_{oxidation} \)
In our case, \( E^0_{reduction} \) is 0.97 V (for the \( \text{NO}_3^- \) reduction). For the cell potential to be positive, \( E^0_{oxidation} \) must be less than 0.97 V.
Since we are given standard reduction potentials, we need to reverse the sign to obtain the oxidation potentials for each metal:
- V: \( E^0_{oxidation} = -(-1.19 \text{ V}) = 1.19 \text{ V} \)
- Fe: \( E^0_{oxidation} = -(-0.04 \text{ V}) = 0.04 \text{ V} \)
- Ag: \( E^0_{oxidation} = -(0.80 \text{ V}) = -0.80 \text{ V} \)
- Au: \( E^0_{oxidation} = -(1.40 \text{ V}) = -1.40 \text{ V} \)
Comparing these values to 0.97 V, we find that Fe, Ag, and Au have oxidation potentials less than 0.97 V. Therefore, these three metals can be oxidized by \( \text{NO}_3^- \) in aqueous solution.
Conclusion:
Vanadium (V) has an oxidation potential greater than 0.97 V, so it will not be oxidized by \( \text{NO}_3^- \). So, the number of metal(s) which will be oxidized by \( \text{NO}_3^- \) in aqueous solution is 3.
Approach Solution -2
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