Question
Easy

The cell potential for the given cell will be: $Mg|Mg^{2+}||Ag^{+}|Ag$

1
$E_{cell}=E_{cell}^{\circ}-\frac{RT}{2F}ln\frac{[Mg^{2+}]}{[Ag^{+}]}$
2
$E_{cell}=E_{cell}^{\circ}-\frac{RT}{2F}ln\frac{[Ag^{+}]^{2}}{[Mg^{2+}]}$
3
$E_{cell}=E_{cell}^{\circ}+\frac{RT}{2F}ln\frac{[Mg^{2+}]}{[Ag^{+}]^{2}}$
4
$E_{cell}=E_{cell}^{\circ}-\frac{RT}{2F}ln\frac{[Mg^{2+}]}{[Ag^{+}]^{2}}$
Question Details
Time to Solve: 12
Exam: HTET
Level/Paper: Level 3
Chapter: Physical Chemistry Applications
Topic: Electro Chemistry
Correct Answer
Option D
Explanation

To determine the correct expression for the cell potential of the given electrochemical cell, $Mg|Mg^{2+}||Ag^{+}|Ag$, we need to apply the Nernst equation. The Nernst equation for a general cell reaction is given by: \[ E_{cell} = E_{cell}^{\circ} - \frac{RT}{nF} \ln Q \] where: - \( E_{cell} \) is the cell potential under non-standard conditions. - \( E_{cell}^{\circ} \) is the standard cell potential. - \( R \) is the universal…Read More