Review v Correct Two 13-cm-diameter electrodes 0.52 cm apart form a parallel-plate capacitor. The electrodes are attached by metal wires to the terminals of a 16 V battery. After a long time, the capacitor is disconnected from the battery but is not discharged. Part D What is the charge on each electrode after insulating handles are used to pull the e away from each other until they are 1.0 cm apart? Express your answer with the appropriate units. • View Available Hint(s) HA ? |Q| = .188 nC

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I Review | Constants
Correct
Two 13-cm-diameter electrodes 0.52 cm apart
form a parallel-plate capacitor. The electrodes are
attached by metal wires to the terminals of a 16 V
battery. After a long time, the capacitor is
disconnected from the battery but is not
discharged.
Part D
What is the charge on each electrode after insulating handles are used to pull the electrodes
away from each other until they are 1.0 cm apart?
Express your answer with the appropriate units.
• View Available Hint(s)
?
HA
|Q| = |.188
nC
Submit
Previous Answers Request Answer
X Incorrect; Try Again; 5 attempts remaining
Transcribed Image Text:I Review | Constants Correct Two 13-cm-diameter electrodes 0.52 cm apart form a parallel-plate capacitor. The electrodes are attached by metal wires to the terminals of a 16 V battery. After a long time, the capacitor is disconnected from the battery but is not discharged. Part D What is the charge on each electrode after insulating handles are used to pull the electrodes away from each other until they are 1.0 cm apart? Express your answer with the appropriate units. • View Available Hint(s) ? HA |Q| = |.188 nC Submit Previous Answers Request Answer X Incorrect; Try Again; 5 attempts remaining
Expert Solution
Step 1

Given data:

The diameter of the electrode is,

D= 13 cm= 0.13 m

Therefore, the radius of the electrode is,

R= 0.065 m

The separation between two electrodes is,

d= 0.52 cm= 0.0052 m

The voltage applied across the battery is,

V= 16 V

Formula used:

The capacitance of the capacitor is,

C=ε0Ad

The relation between charge, voltage, and capacitance is,

Q=CV

 

 

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