So far we have treated the capacitor with vacuum (or air) between the plates. Real capacitors — from the ceramic ones in electronic circuits to the large electrolytic ones in power supplies — have a dielectric between the plates: an insulating material (paper, plastic, ceramic, aluminium oxide) that modifies their properties in a surprising way.
Polarisation of the material
The molecules of a dielectric do not let free charges flow — it is an insulator — but under the effect of the plates’ field their electron clouds shift slightly relative to the nuclei: each molecule becomes a small electric dipole oriented along . Some molecules are already polar by nature (for example water, ): in that case the field merely orients them.
The dielectric’s molecular dipoles align along the plates’ field ; the induced charges accumulate on the faces facing the electrodes.
The collective result is that the dipoles’ charges accumulate on the faces of the dielectric near the plates: on the upper face induced negative charges appear (facing the positive plate), on the lower face positive charges. These polarisation charges produce a field opposite to . The total field in the dielectric is therefore reduced:
where is the material’s relative dielectric constant, a pure number.
Principle — Capacitance with a dielectric
Inserting a dielectric of constant between the plates of a parallel-plate capacitor of vacuum capacitance increases the capacitance by a factor :
The weaker field, for the same charge, means a smaller potential difference , and hence — since — a larger capacitance. The dielectric “helps” the capacitor hold more charge per volt.
Key formula
The values of vary enormously from material to material:
| Material | |
|---|---|
| Vacuum / air | |
| Paper | |
| Glass | – |
| Mica | |
| Water (at C) | |
| Barium titanate |
Water, with , is an extraordinary solvent for exactly this reason: reducing the Coulomb force between ions by a factor of is enough to break apart a crystal such as , dissolving the salt.
Links
Topics: Electric field and potential Concepts: Dielectrics and polarisation · Capacitance and capacitor
Related exercises: Ranking the energy of capacitors · Dielectric in a capacitor · Ranking capacitors with different geometries