Answer: a) 0.43 pF (10~-12F); 5.16 pC (10^-12C); 4.85 *10^3 N/C
Explanation: In order to solve this problem we have to consider the expresion for the capacitor of parallel plates, which is
ΔV=Q/C in this case C=A*εo/d where A is the area of the plates and d its separation,
The we have;
C=0,00012 m^2* 8,85*10~ -12/0.0025 m= 0.43 pF
Then we have that
Q= ΔV*C= 12V * 0.43 pF=5.16 pC
Finally, the electric field inside the plates is given by:
E=Q/(A*εo)= 5.16 pC/(0.00012 m^2*8.85 *^10-12 C^2/N*m^2)=4.85 *10^3 N/C
