Electric fields and capacitance pair the second inverse-square field with the exam's favourite exponential system — the RC circuit. This quiz covers both, with the multi-quantity capacitor problems that reward systematic working.
The field questions run the point-charge toolkit with real values: Coulomb's law for the force between two microcoulomb charges (0.80 N, verified by manual calculation during checking), the potential at a distance from a point charge, force on a charge in a uniform field, and the acceleration of an electron between plates — the charge-to-mass calculation that lands near 10¹⁴ m/s² and tests powers-of-ten discipline as much as physics.
The capacitance questions centre on a parallel-plate problem examined as a statement set: capacitance from plate area and separation, energy stored, with distractors encoding the two classic errors — a field strength computed with millimetres left unconverted, and a charge off by the wrong power of ten. Verification confirmed the key by recomputing all four quantities. Further questions recover capacitance from stored energy, combine capacitors in series through the reciprocal rule, and work the charge-sharing problem — a charged capacitor reconnected across an uncharged one, solved by conserving charge and dividing by the combined capacitance.
The RC-circuit questions close the set: which factors define the time constant (resistance and capacitance only), and the qualitative shape of charging through a resistor — current decaying exponentially as the capacitor's pd rises.
Every constant and value is given in the question, matching the data-booklet exam format, and each explanation traces the complete numeric chain with units carried throughout.
Topic scope follows sections 3.7.3-3.7.4 (Electric fields; Capacitance) of the current A-level physics subject content: Coulomb's law, field strength and potential, parallel plates, capacitor energy, and charge/discharge through a resistor.