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Units & Conversionshard
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An experimental supercapacitor has a capacitance density defined by C=εAdC = \frac{\varepsilon A}{d}C=dεA​, where ε\varepsilonε is permittivity, AAA is area, and ddd is thickness. If ε=8.85×10−12 F/m\varepsilon = 8.85 \times 10^{-12} \text{ F/m}ε=8.85×10−12 F/m, A=0.5 m2A = 0.5 \text{ m}^2A=0.5 m2, and d=100 nmd = 100 \text{ nm}d=100 nm, what is the energy EEE stored in the capacitor at a potential difference of 5 Volts5 \text{ Volts}5 Volts (E=12CV2E = \frac{1}{2}CV^2E=21​CV2)?