Energy stored in a capacitor Edexcel International A Level Physics revision

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In plain words

Charging a capacitor takes work: every extra bit of charge has to be pushed on against the charge that is already there. That work is stored, and it can be let out in a rush, which is how a camera flash gets its burst from a small battery.

Three things to know

  1. The energy stored is the area under a graph of p.d. against charge. The graph is a straight line through the origin, so the area is a triangle: W = ½QV.
  2. Using Q = CV, the same energy is W = ½CV², or W = ½Q² ÷ C.
  3. The battery supplies an energy QV, but only half is stored. The rest is dissipated in the resistance of the circuit while the capacitor charges.

Worked example

A 470 µF capacitor is charged to 12 V. Find the energy stored in it.

  1. W = ½CV².
  2. = ½ × 470 × 10⁻⁶ × 12².
  3. = 0.034 J.

Tips and tricks

  • Double the p.d. and the energy stored is four times bigger.
  • The half comes from the triangle under the graph: the p.d. rises as the charge goes on.
5 questions, about 2 minutes.

It lands in your notebook with its questions as flashcards.

Energy stored in a capacitor: 5 questions and answers

These are the quiz’s questions. Do the quiz first, then come back here for the ones that got you.

  1. What does the area under a graph of p.d. against charge for a capacitor represent?
    • the energy stored (the answer)
    • the capacitance
    • the current
    • the time constant

    Each bit of charge is pushed through the p.d. at that moment.

  2. The p.d. across a capacitor is doubled. What happens to the energy stored?
    • It doubles.
    • It becomes four times bigger. (the answer)
    • It halves.
    • It stays the same.

    W = ½CV².

  3. How much energy is stored in a 2.0 µF capacitor charged to 100 V?
    • 1.0 × 10⁻⁴ J
    • 0.010 J (the answer)
    • 0.020 J
    • 100 J

    ½ × 2.0 × 10⁻⁶ × 100².

  4. Which of these is not an expression for the energy stored in a capacitor?
    • QV (the answer)
    • ½QV
    • ½CV²
    • ½Q² ÷ C

    QV is the energy supplied by the battery, which is twice what is stored.

  5. A battery supplies an energy QV while charging a capacitor. How much of it ends up stored in the capacitor?
    • half (the answer)
    • all of it
    • a quarter
    • none

    The other half is dissipated in the resistance of the circuit.

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