Chemistry · Ch 11 — The Solid State
Magnetic Properties
Magnetic Properties
Every substance has some magnetic character, and its origin lies in the electrons. Each electron behaves like a tiny magnet, with a magnetic moment arising from two motions (Fig. 1.35):
- its orbital motion around the nucleus, and
- its spin about its own axis.
Being a charged particle in motion, the electron acts like a small current loop with a magnetic moment. Thus every electron has both a permanent spin and an orbital magnetic moment. This moment is tiny and is measured in the Bohr magneton ():
On the basis of their magnetic behaviour, substances fall into five categories (the alignment of domain moments for the last three is shown in Fig. 1.36):
- (i) Paramagnetic — weakly attracted by a magnetic field and magnetised along it, but they lose their magnetism once the field is removed. This arises from one or more unpaired electrons. Examples: O, Cu, Fe, Cr.
- (ii) Diamagnetic — weakly repelled by a magnetic field and weakly magnetised in the opposite direction. This occurs when all electrons are paired, so their magnetic moments cancel. Examples: HO, NaCl, CH.
- (iii) Ferromagnetic — very strongly attracted and can be permanently magnetised. The metal ions group into small regions called domains, each acting as a tiny magnet. Normally the domains are randomly oriented and cancel out, but in a field they all line up (Fig. 1.36a) giving a strong effect that persists even after the field is removed. Examples: iron, cobalt, nickel, gadolinium and CrO.
- (iv) Antiferromagnetic — the domains are arranged so that they are oppositely oriented and cancel each other's moments (Fig. 1.36b). Example: MnO. …
What this figure shows. Two small diagrams. (a) an electron orbiting a nucleus, the circulating charge acting as a current loop with an associated magnetic moment (arrow).
(b) an electron spinning about its own axis, also producing a magnetic moment (arrow), illustrating orbital and spin contributions to the Bohr magneton. …
What this figure shows. Three rows of small arrows (magnetic moments of domains). (a) ferromagnetic: all arrows aligned parallel in the same direction.
(b) antiferromagnetic: arrows alternate up/down in equal numbers cancelling out.
(c) ferrimagnetic: arrows aligned parallel and anti-parallel in unequal numbers giving a net moment. …