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= Textbook =
<!-- Top-left mini menu -->
*[https://openstax.org/books/university-physics-volume-2/pages/8-introduction University Physics Volume 2: Chapter 8 - Capacitance]
<div style="float:left; font-size:90%; margin:0.25em 0 0.75em 0;">
*[https://openstax.org/books/university-physics-volume-2/pages/10-5-rc-circuits University Physics Volume 2: Chapter 10.5 - RC Circuits]
  [[Electricity_and_Magnetism|⬅ Back to Electricity and Magnetism]]
</div>
<br style="clear:both;" />


= Videos =
<div style="float:right; font-size:90%;">
== Capacitors ==
  [[Condensateurs|🌐 Version en français : Condensateurs]]
<youtube>ZrMltpK6iAw</youtube>
</div>
<youtube>BimpNou0orc</youtube>


== Capacitors in Series and in Parallel ==
<!-- Page intro banner -->
<youtube>g7eNTwJGhio</youtube>
<div style="border-left:5px solid #0ea5e9; padding:1em; background-color:#ecfeff; margin:0.75em 0 1em;">
<youtube>zaT4JorVUz0</youtube>
  <p style="margin:0; font-weight:bold;">📘 Capacitors</p>
</div>


== Build your own capacitor ==
= Reference Textbook =
<youtube>rG7N_Zv6_gQ</youtube>


<div style="border:1px solid #28a745; padding:0.8em; background-color:#f0fdf4; margin:1em 0;">
  <p style="margin:0.2em 0;"><strong>📖 Reference Textbook:</strong><br>
  [https://openstax.org/books/university-physics-volume-2/pages/8-introduction University Physics Volume 2: Chapter 8 — Capacitance]</p>
</div>


= Simulations =
= Theory =
*[http://micro.magnet.fsu.edu/electromag/java/capacitor/index.html Charging And Discharging A Capacitor]
*[http://micro.magnet.fsu.edu/electromag/java/lightning/index.html An Example Of A Natural Capacitor]
*[http://micro.magnet.fsu.edu/electromag/java/capacitance/index.html Factors Affecting Capacitance]
*[https://phet.colorado.edu/en/simulations/capacitor-lab PhET Capacitor Lab Simulations]


== What Is a Capacitor and What Is Capacitance? ==
[[File:Electronic_components_capacitor.jpg|right|400px]]
A '''capacitor''' is an electronic component that stores electrical energy in an electric field, created between two conductors separated by an insulating material (called a '''dielectric''') or by vacuum. In a parallel-plate capacitor, these conductors are two plates.
'''Capacitance''' is the measure of a capacitor's ability to store charge per unit voltage. Its SI unit is the '''farad''' (F).
Capacitors are widely used in various applications, including:
* '''Energy storage''' (e.g., in power supplies).
* '''Filtering''' (e.g., in electronic circuits to smooth out fluctuations in voltage).
* '''Timing circuits''' (e.g., controlling signal timing in oscillators).
* '''Signal coupling and decoupling''' (e.g., in audio equipment).
Their ability to store and release energy quickly makes them essential in electronics.
<br class="clear"/>
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: Capacitors — 1'''
[https://www.youtube.com/watch?v=ZrMltpK6iAw Watch the video on YouTube]
</div>
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: Capacitors — 2'''
[https://www.youtube.com/watch?v=BimpNou0orc Watch the video on YouTube]
</div>
<br class="clear"/>
== Capacitance Definition ==
The capacitance <math>C</math> of a capacitor is defined as the ratio of the magnitude of the charge <math>Q</math> stored on either plate to the magnitude of the potential difference <math>\Delta V</math> across the plates:
<math>C=\frac{Q}{\Delta V}</math>
where:
* <math>C</math> is the capacitance (in farads, F);
* <math>Q</math> is the magnitude of the charge on either plate (in coulombs, C);
* <math>\Delta V</math> is the magnitude of the potential difference between the plates (in volts, V).
The plates carry equal and opposite charges, <math>+Q</math> and <math>-Q</math>. The charge stored refers to the magnitude of the charge on either plate, rather than the net charge of the capacitor.
<math>1~\mathrm{F}=1~\mathrm{C/V}</math>
<br class="clear"/>
== Capacitance of a Parallel-Plate Capacitor ==
For a parallel-plate capacitor, the capacitance depends on the area <math>A</math> of the plates, the separation <math>d</math> between them, and the permittivity <math>\varepsilon</math> of the material between the plates.
If the space between the plates is completely filled with a uniform dielectric and edge effects are neglected,
<math>C=\frac{\varepsilon A}{d}</math>
where:
* <math>C</math> is the capacitance (in farads, F);
* <math>\varepsilon</math> is the permittivity of the dielectric material (in farads per metre, F/m);
* <math>A</math> is the area of one plate (in square metres, m²);
* <math>d</math> is the separation between the plates (in metres, m).
The permittivity can be written as
<math>\varepsilon=\kappa\varepsilon_0</math>
where <math>\kappa</math> is the dielectric constant (relative permittivity) and <math>\varepsilon_0</math> is the permittivity of vacuum. For vacuum, <math>\kappa=1</math>; for air, it is approximately 1.
A larger plate area increases the capacitance, while a larger separation decreases it.
<br class="clear"/>
== Energy Stored in a Capacitor ==
The energy <math>U</math> stored in a charged capacitor is
<math>U=\frac{1}{2}C(\Delta V)^2</math>
where:
* <math>U</math> is the energy stored (in joules, J);
* <math>C</math> is the capacitance (in farads, F);
* <math>\Delta V</math> is the magnitude of the potential difference between the plates (in volts, V).
Using <math>Q=C\Delta V</math>, equivalent expressions are
<math>U=\frac{1}{2}Q\Delta V=\frac{Q^2}{2C}</math>
This energy is stored in the electric field.


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= Other Links =
 
*[http://www.regentsprep.org/Regents/physics/phys03/aparplate/ Charged Parallel Plates]
== Energy Density in a Capacitor ==
*[http://tutor-homework.com/Physics_Help/rc_circuit_simulation.html RC circuit simulator]
 
The energy density <math>u</math> represents the energy stored per unit volume in the electric field between the plates.
 
For a linear dielectric,
 
<math>u=\frac{1}{2}\varepsilon E^2</math>
 
where:
 
* <math>u</math> is the energy density (in joules per cubic metre, J/m³);
* <math>\varepsilon</math> is the permittivity of the material (in farads per metre, F/m);
* <math>E</math> is the electric field magnitude (in volts per metre, V/m).
 
For a uniform field between parallel plates, the energy density is also <math>u=U/(Ad)</math>.
 
<br class="clear"/>
 
== Equivalent Capacitance in Series ==
 
For capacitors connected in series, the reciprocal of the equivalent capacitance is the sum of the reciprocals of the individual capacitances:
 
<math>\frac{1}{C_{\mathrm{eq}}}=\frac{1}{C_1}+\frac{1}{C_2}+\cdots+\frac{1}{C_n}</math>
 
where:
 
* <math>C_{\mathrm{eq}}</math> is the equivalent capacitance (in farads, F);
* <math>C_1,C_2,\ldots,C_n</math> are the individual capacitances (in farads, F).
 
For initially uncharged capacitors charged in series:
 
* Each capacitor stores the '''same charge magnitude'''.
* The potential differences across the capacitors add to give the total potential difference.
* The equivalent capacitance is smaller than any of the individual capacitances.
 
<br class="clear"/>
 
== Equivalent Capacitance in Parallel ==
 
For capacitors connected in parallel, the equivalent capacitance is the sum of the individual capacitances:
 
<math>C_{\mathrm{eq}}=C_1+C_2+\cdots+C_n</math>
 
where:
 
* <math>C_{\mathrm{eq}}</math> is the equivalent capacitance (in farads, F);
* <math>C_1,C_2,\ldots,C_n</math> are the individual capacitances (in farads, F).
 
For capacitors connected in parallel:
 
* Each capacitor has the '''same potential difference''' across it.
* The stored charges add to give the total stored charge.
* The equivalent capacitance is larger than any of the individual capacitances when two or more capacitors are connected.
 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: Capacitors in Series and in Parallel — 1'''
 
[https://www.youtube.com/watch?v=g7eNTwJGhio Watch the video on YouTube]
</div>
 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: Capacitors in Series and in Parallel — 2'''
 
[https://www.youtube.com/watch?v=zaT4JorVUz0 Watch the video on YouTube]
</div>
 
<br class="clear"/>
 
== RC Circuits: Charging and Discharging a Capacitor ==
 
The voltage across a capacitor changes over time as it charges or discharges through a resistor.
 
See [[RC_Circuits|RC Circuits]] for the relationships describing this behaviour.
 
<br class="clear"/>
 
= Demonstrations =
 
== Build Your Own Capacitor ==
 
<div style="border-left:5px solid #f97316; padding:0.8em 1em; background-color:#fff7ed; margin:1em 0;">
'''▶ Demonstration: Build Your Own Capacitor'''
 
[https://www.youtube.com/watch?v=rG7N_Zv6_gQ Watch the demonstration on YouTube]
</div>
 
<br class="clear"/>
 
= Capacitor Simulations =
 
Explore capacitance, energy storage, and capacitor charging with these simulations:
 
* [http://micro.magnet.fsu.edu/electromag/java/capacitor/index.html Charging and Discharging a Capacitor]
* [http://micro.magnet.fsu.edu/electromag/java/lightning/index.html An Example of a Natural Capacitor]
* [http://micro.magnet.fsu.edu/electromag/java/capacitance/index.html Factors Affecting Capacitance]
* [https://phet.colorado.edu/en/simulations/capacitor-lab PhET: Capacitor Lab]
 
<br class="clear"/>
 
 
 
<!-- Bottom navigation menu -->
<div style="float:left; font-size:90%; margin:0.25em 0 0.75em 0;">
  [[Electric Potential|⬅ Previous: Electric Potential]]
</div>
 
<div style="float:right; font-size:90%; margin:0.25em 0 0.75em 0;">
  [[Current and Resistance|Next: Current and Resistance ➡]]
</div>
 
<br style="clear:both;" />

Latest revision as of 10:02, 19 September 2026

 ⬅ Back to Electricity and Magnetism


 🌐 Version en français : Condensateurs

📘 Capacitors

Reference Textbook

📖 Reference Textbook:
University Physics Volume 2: Chapter 8 — Capacitance

Theory

What Is a Capacitor and What Is Capacitance?

A capacitor is an electronic component that stores electrical energy in an electric field, created between two conductors separated by an insulating material (called a dielectric) or by vacuum. In a parallel-plate capacitor, these conductors are two plates.

Capacitance is the measure of a capacitor's ability to store charge per unit voltage. Its SI unit is the farad (F).

Capacitors are widely used in various applications, including:

  • Energy storage (e.g., in power supplies).
  • Filtering (e.g., in electronic circuits to smooth out fluctuations in voltage).
  • Timing circuits (e.g., controlling signal timing in oscillators).
  • Signal coupling and decoupling (e.g., in audio equipment).

Their ability to store and release energy quickly makes them essential in electronics.


▶ Video: Capacitors — 1

Watch the video on YouTube

▶ Video: Capacitors — 2

Watch the video on YouTube


Capacitance Definition

The capacitance C of a capacitor is defined as the ratio of the magnitude of the charge Q stored on either plate to the magnitude of the potential difference ΔV across the plates:

C=QΔV

where:

  • C is the capacitance (in farads, F);
  • Q is the magnitude of the charge on either plate (in coulombs, C);
  • ΔV is the magnitude of the potential difference between the plates (in volts, V).

The plates carry equal and opposite charges, +Q and −Q. The charge stored refers to the magnitude of the charge on either plate, rather than the net charge of the capacitor.

1F=1C/V


Capacitance of a Parallel-Plate Capacitor

For a parallel-plate capacitor, the capacitance depends on the area A of the plates, the separation d between them, and the permittivity ε of the material between the plates.

If the space between the plates is completely filled with a uniform dielectric and edge effects are neglected,

C=εAd

where:

  • C is the capacitance (in farads, F);
  • ε is the permittivity of the dielectric material (in farads per metre, F/m);
  • A is the area of one plate (in square metres, m²);
  • d is the separation between the plates (in metres, m).

The permittivity can be written as

ε=κε0

where κ is the dielectric constant (relative permittivity) and ε0 is the permittivity of vacuum. For vacuum, κ=1; for air, it is approximately 1.

A larger plate area increases the capacitance, while a larger separation decreases it.


Energy Stored in a Capacitor

The energy U stored in a charged capacitor is

U=12C(ΔV)2

where:

  • U is the energy stored (in joules, J);
  • C is the capacitance (in farads, F);
  • ΔV is the magnitude of the potential difference between the plates (in volts, V).

Using Q=CΔV, equivalent expressions are

U=12QΔV=Q22C

This energy is stored in the electric field.


Energy Density in a Capacitor

The energy density u represents the energy stored per unit volume in the electric field between the plates.

For a linear dielectric,

u=12εE2

where:

  • u is the energy density (in joules per cubic metre, J/m³);
  • ε is the permittivity of the material (in farads per metre, F/m);
  • E is the electric field magnitude (in volts per metre, V/m).

For a uniform field between parallel plates, the energy density is also u=U/(Ad).


Equivalent Capacitance in Series

For capacitors connected in series, the reciprocal of the equivalent capacitance is the sum of the reciprocals of the individual capacitances:

1Ceq=1C1+1C2+⋯+1Cn

where:

  • Ceq is the equivalent capacitance (in farads, F);
  • C1,C2,…,Cn are the individual capacitances (in farads, F).

For initially uncharged capacitors charged in series:

  • Each capacitor stores the same charge magnitude.
  • The potential differences across the capacitors add to give the total potential difference.
  • The equivalent capacitance is smaller than any of the individual capacitances.


Equivalent Capacitance in Parallel

For capacitors connected in parallel, the equivalent capacitance is the sum of the individual capacitances:

Ceq=C1+C2+⋯+Cn

where:

  • Ceq is the equivalent capacitance (in farads, F);
  • C1,C2,…,Cn are the individual capacitances (in farads, F).

For capacitors connected in parallel:

  • Each capacitor has the same potential difference across it.
  • The stored charges add to give the total stored charge.
  • The equivalent capacitance is larger than any of the individual capacitances when two or more capacitors are connected.

▶ Video: Capacitors in Series and in Parallel — 1

Watch the video on YouTube

▶ Video: Capacitors in Series and in Parallel — 2

Watch the video on YouTube


RC Circuits: Charging and Discharging a Capacitor

The voltage across a capacitor changes over time as it charges or discharges through a resistor.

See RC Circuits for the relationships describing this behaviour.


Demonstrations

Build Your Own Capacitor

▶ Demonstration: Build Your Own Capacitor

Watch the demonstration on YouTube


Capacitor Simulations

Explore capacitance, energy storage, and capacitor charging with these simulations:



 ⬅ Previous: Electric Potential
 Next: Current and Resistance ➡