Imagine a room full of tiny compass needles, each free to spin. Normally, they point in random directions — left, right, up, down — so the room as a whole has no net direction. Now walk in with a strong bar magnet. Every needle snaps to point along the magnet's field. But here's the strange part: even after you take the magnet out of the room, most needles stay pointing the same way. The room has "remembered" the field.
That is ferromagnetism in a nutshell. The material doesn't just respond to an external magnetic field — it keeps that response after the field is gone.
The Physics: Why This Happens
Ferromagnetism arises from a quantum-mechanical effect called exchange interaction. In simple terms, the electrons in certain atoms (like iron, cobalt, nickel) have a strong preference to align their spins parallel to each other. This is not a magnetic force in the ordinary sense — it's a purely quantum effect that makes neighbouring atomic magnets want to point the same way.
Because of this, the material spontaneously divides into domains — microscopic regions (typically 10−6 to 10−3 m across) where all atomic magnetic moments are already aligned. In an unmagnetised piece of iron, these domains point in different directions, so the net magnetisation is zero.
When you apply an external magnetic field B0, the domains that are already aligned with the field grow at the expense of the others. The domain walls move. At high enough fields, all domains merge into one, and the material is saturated — every atomic moment points the same way.
The Key Quantities
The magnetic susceptibilityχm for a ferromagnet is enormous — typically 103 to 105, compared to 10−5 for paramagnets. The relation is:
M=χmH
where M is the magnetisation (magnetic moment per unit volume) and H is the applied magnetic field intensity. But this χm is not constant — it depends on the history of the material.
Hysteresis: The Memory Effect
When you remove the external field, the domains do not return to random orientations. They get stuck — partly because of impurities and crystal defects that pin the domain walls. The material retains a remanent magnetisationMr. To bring it back to zero magnetisation, you must apply a field in the opposite direction, called the coercive fieldHc.
This loop — magnetisation vs. applied field — is called a hysteresis loop. Its area equals the energy lost as heat per cycle (used in transformers, where you want a narrow loop to minimise loss).
Important
Ferromagnetism is the only type of magnetism that persists without an external field. The key condition: the material must have unpaired electronsand the exchange interaction must favour parallel alignment. Only three elements are ferromagnetic at room temperature: iron (Fe), cobalt (Co), and nickel (Ni). Gadolinium (Gd) becomes ferromagnetic below about 19-20∘C (just below room temperature).
Diamagnetic materials are weakly repelled (negative, small susceptibility); paramagnetic materials are weakly attracted (positive, small susceptibility); ferromagnetic materials are strongly attracted (positive, large susceptibility). …
Step 1. Diamagnetic materials have no permanent atomic moment; an applied field induces a small moment opposing itself, so χm is small and negative, and the material is weakly repelled in a non-uniform field (e.g. bismuth, copper, water).
Step 2. Paramagnetic materials have a net atomic moment that is normally randomly oriented; an applied field partially aligns it, so χm is small and positive, and the material is weakly attracted (e.g. aluminium, platinum). …