N.3. The effective area of each plate of a parallel plate capacitor is 2.1 m. The capacitor is filled with neoprene rubber (K = 6.4). When a 6.0-V potential difference exists across the plates of the capacitor, the capacitor stores 4.0 µC of charge. Determine the plate separation of the capacitor. A) 7.2 x 10 m B) 3.0 x 10m C) 1.8 x 10m D) 5.3 x 10m E) 8.2 x 10m
N.3. The effective area of each plate of a parallel plate capacitor is 2.1 m. The capacitor is filled with neoprene rubber (K = 6.4). When a 6.0-V potential difference exists across the plates of the capacitor, the capacitor stores 4.0 µC of charge. Determine the plate separation of the capacitor. A) 7.2 x 10 m B) 3.0 x 10m C) 1.8 x 10m D) 5.3 x 10m E) 8.2 x 10m
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
Transcribed Image Text:N.3. The effective area of each plate of a parallel plate capacitor is 2.1 m. The capacitor is
filled with neoprene rubber (K = 6.4). When a 6.0-V potential difference exists across the plates
of the capacitor, the capacitor stores 4.0 µC of charge. Determine the plate separation of the
capacitor.
A) 7.2 x 10 m
B) 3.0 x 10m
C) 1.8 x 10m
D) 5.3 x 10m
E) 8.2 x 10m
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