Given: The first capacitor has capacitance C1=100pF and initial voltage Vi=60V. The second capacitor is initially uncharged. After connection in parallel, the final common voltage is Vf=20V.
Find: The capacitance C2 of the second capacitor.
When a charged capacitor is connected in parallel to an uncharged capacitor, charge redistributes until both capacitors have the same final voltage. Total charge is conserved.
Initial charge on the first capacitor:
Qi=C1Vi=(100pF)(60V)=6000pCFinal charge on the first capacitor:
Qf1=C1Vf=(100pF)(20V)=2000pCFinal charge on the second capacitor:
Qf2=C2Vf=C2(20V)By conservation of charge:
Qi=Qf1+Qf2
6000pC=2000pC+C2(20V)
4000pC=C2(20V)
C2=20V4000pC=200pFTherefore, the capacitance of the second capacitor is 200pF. The correct option is B.