Consider the following reaction at 298 K.
Which of the following statements are correct?
![Consider the following reaction at 298 K Which of the following statements are correct class=](https://us-static.z-dn.net/files/d44/0f140a9139e164a9b5d946bbc3d599bf.png)
From the calculation, the correct statements are;
Now we know that it is possible to obtain the equilibrium constant from the relation;
E°cell = 0.0592/n log K
E°cell = cell potential = -0.403 - 0.535 = -0.938 V
n = number of electrons = 2 electrons
K = equilibrium constant
Thus;
-0.938 = 0.0592/2 logK
-0.938 * 2/ 0.0592 = log K
K = 2 * 10^-31
ΔG = - nFE°cell
ΔG = - (2 * 96500 * -0.938)
ΔG = 181kJ/mol
Learn more about equilibrium constant:https://brainly.com/question/10038290
#SPJ1