Respuesta :
Answer:
(i) Δ[tex]E^{o}_{cell} }[/tex] = -4.07v
(ii)Δ[tex]G^{o}_{rxn}[/tex] = +785.510 KJ
(iii) The reaction is for an electrolytic cell
Explanation:
In this question, we are tasked with calculating Δ[tex]E^{o}[/tex] and Δ[tex]G^{o}_{rxn}[/tex] for the reaction and determine if the reaction is for a voltaic or electrolytic cell.
We proceed as follows;
Firstly, we write the complete equation of reaction as shown below;
[tex]2Na^{+}[/tex] + [tex]2Cl^{-}[/tex] → [tex]2Na_{(s)}[/tex] + [tex]Cl_{2(g)}[/tex]
We can see that chlorine goes from a negative state to zero state. This is indicative of loss of electron which is defined as oxidation
We can also see that sodium went from a positive state to zero state which is indicative of electron gain which is defined as reduction
Mathematically, the value of Δ[tex]E^{o}_{cell} }[/tex] for the reaction can be calculated using the formula below;
Δ[tex]E^{o}_{cell} }[/tex] = Δ[tex]E^{o}_{reduction} }[/tex] - Δ[tex]E^{o}_{oxidation} }[/tex] = -2.71v - 1.36v = -4.07V
The value of Δ[tex]G^{o}_{rxn}[/tex] can be calculated as follows;
Δ[tex]G^{o}_{rxn}[/tex] = -nFΔ[tex]E^{o}_{cell} }[/tex]
Where n = 2 and F is 96,500C . We plug these values to get;
Δ[tex]G^{o}_{rxn}[/tex] = -2 × 96,500C× -4.07V = 785,510J = 785.510KJ (1KJ = 1000J)
Now, we answer if this reaction is for a voltaic or an electrolytic cell;
It is for an electrolytic cell because electrons flow from cathode to anode as indicated by magnitude of the Δ[tex]G^{o}_{rxn}[/tex](positive in value)
