Question

Given below are the standard electrode potentials of a few half-cells. ${\mathrm{K}}^{+}/\mathrm{K}=-2.93\mathrm{V},{\mathrm{Ag}}^{+}/\mathrm{Ag}=0.80\mathrm{V},{\mathrm{Mg}}^{2+}/\mathrm{Mg}=–2.37\mathrm{V},{\mathrm{Cr}}^{3+}/\mathrm{Cr}=–0.74\mathrm{V}$. What will be the correct order of these metals in increasing reducing power?

Answer 1

Redox potential

• Redox potential is a measure of tendency of chemical species to get reduced or oxidised by gaining or losing electrons to an electrode.

Reducing power

• Reducing power is the potential of a substance to reduce another substance.
• More the oxidation potential the element will have more tendency to get oxidised.
• Reduction potential of half cells are:

$$\begin{gathered} {\mathrm{K}}^{+}/\mathrm{K}=-2.93\mathrm{V} \\ {\mathrm{Ag}}^{+}/\mathrm{Ag}=0.80\mathrm{V} \\ {\mathrm{Mg}}^{2+}/\mathrm{Mg}=–2.37\mathrm{V} \\ {\mathrm{Cr}}^{3+}/\mathrm{Cr}=–0.74\mathrm{V} \end{gathered}$$

• The more easily it removes electrons or higher the reduction potential higher is its reducing power, the more it will reduce other substance.
• Order of these metals in increasing reducing powers is $\mathrm{Ag}<\mathrm{Cr}<\mathrm{Mg}<\mathrm{K}.$

Therefore, potassium has lowest reduction potential, therefore, it can donate electrons easily and reduces other substance.