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Physics

Capacitive Reactance calculator

Capacitive reactance of a capacitor at a chosen AC frequency, the opposition a capacitor presents to alternating current.

Published 25 August 2026

What this calculator does

Capacitive reactance is the opposition a capacitor presents to alternating current, measured in ohms just like resistance, but with one key difference: it depends on frequency. A capacitor blocks direct current almost completely once charged, but at higher AC frequencies it lets more current through, so its reactance falls as frequency rises.

This behaviour is the opposite of an inductor, whose reactance rises with frequency. That contrast is why capacitors and inductors are used together in filters: a capacitor can be chosen to pass high frequencies while blocking low ones, or vice versa, depending on how the circuit is arranged.

The formula

FormulaXc = 1 / (2πfC), where f is frequency in hertz and C is capacitance in farads

Capacitive reactance formula: Xc = 1 ÷ (2πfC), where f is the frequency in hertz and C is the capacitance in farads. Since real capacitors are usually specified in microfarads rather than farads, this calculator takes capacitance in µF and converts it internally before applying the formula.

TermMeaning
XcCapacitive reactance, in ohms: the opposition a capacitor presents to alternating current at a given frequency.
fFrequency of the AC signal, in hertz (cycles per second).
CCapacitance, in farads (entered here in microfarads, µF, and converted automatically).

The inputs explained

FieldWhat to enter
Frequency (Hz)The frequency of the AC signal or supply, in hertz. Mains power is typically 50 Hz or 60 Hz; audio and signal circuits often run much higher.
Capacitance (µF)The capacitor's rated capacitance, in microfarads (µF), as printed on the component or datasheet.

When to use it

Designing a filter circuit

Choosing a capacitor value for a high-pass or low-pass filter starts with working out the reactance at the target cutoff frequency, since that reactance needs to be comparable to the circuit's resistance for the filter to behave as intended.

Checking a capacitor's effect at mains frequency

A capacitor used across mains voltage (50 Hz or 60 Hz) will have a very different reactance to the same component used in a kilohertz-range signal circuit, worth confirming before assuming a component behaves the same way in both settings.

Comparing capacitive and inductive reactance in an AC circuit

At the resonant frequency of an LC circuit, capacitive and inductive reactance are equal; calculating Xc at a candidate frequency is the first step toward finding or checking that resonance point.

Worked examples

Every figure in the tables below is produced by this page’s own calculator at build time, so the numbers and the tool always agree. Select any row to load that scenario.

How capacitive reactance changes with frequency

A fixed 1 µF capacitor, across a range of frequencies.

1 µF capacitor
FrequencyCapacitive reactance (Xc)
50 Hz3,183.10 Ω
60 Hz2,652.58 Ω
100 Hz1,591.55 Ω
1,000 Hz159.155 Ω
10,000 Hz15.915 Ω
100,000 Hz1.592 Ω
Reactance falls as frequency rises: the same 1 µF capacitor presents 3,183.10 Ω at 50 Hz but only 1.592 Ω at 100,000 Hz, a two-thousand-fold drop across a two-thousand-fold rise in frequency, since the two are inversely proportional.

How capacitive reactance changes with capacitance

A fixed 1,000 Hz signal, across a range of capacitor values.

1,000 Hz frequency
CapacitanceCapacitive reactance (Xc)
0.01 µF15,915.49 Ω
0.1 µF1,591.55 Ω
1 µF159.155 Ω
10 µF15.915 Ω
100 µF1.592 Ω
1000 µF0.1592 Ω
A bigger capacitor presents less reactance at the same frequency: at 1,000 Hz, a 1,000 µF capacitor has a reactance of just 0.1592 Ω, one hundred-thousandth of the 15,915.49 Ω a 0.01 µF capacitor shows at the same frequency.

Questions

What is the capacitive reactance formula?

Xc = 1 ÷ (2πfC), where f is frequency in hertz and C is capacitance in farads. The result, Xc, is in ohms, the same unit used for resistance.

Why does capacitive reactance fall as frequency rises?

A capacitor stores charge by having current flow onto and off its plates. At higher frequencies, the voltage across it reverses more often, so the capacitor spends less time fully charged and more time actively passing current, which shows up as lower opposition to the AC signal.

Is capacitive reactance the same as resistance?

They share the same unit (ohms) and both oppose current, but reactance is frequency-dependent and does not dissipate energy as heat the way resistance does; a capacitor stores and releases energy each cycle rather than consuming it.

How does capacitive reactance relate to an RC circuit's time constant?

Both come from the same resistance and capacitance values, but describe different things: the RC time constant (τ = RC) describes how quickly a capacitor charges or discharges through a resistor, while capacitive reactance describes its ongoing opposition to a continuous AC signal at a chosen frequency. See the RC time constant calculator for the charging and discharging behaviour.

For how a capacitor charges and discharges through a resistor over time, see the RC circuit charge and discharge calculator. For capacitors wired together rather than a single component, see the capacitors in series and parallel calculator.