Answer: 204.29 *10^-6 J
Explanation: In order to explain this question we have to consider to following expression for the potencial and electric field in a capacitor, which is given by;
E*d=V where d is the separation between plates and E and V are the electric field and the voltage difference in the plates.
For the maximun electric field, V max es equal
Vmax=Emax*d= 222*10^3 *1.96*10^-3=435.12 V
We also know that potential energy stores by a capacitor with a constant dielectric κ is given by:
E=0.5*C*V^2, where C is the capacity and V the voltage.
For two plates capacitor C is equalk to:
C= k*ε*A/d where A and d are the area and the separation in the capacitor. εo is a constant equal 8.85*10^-12 F/m
Then;
E=[(0.5*5.85*8.85*10^-12*0.0817)/(1.96*10^-3)]*(435.12)^2= 204.29 *10^-6 J