Q.What is Ferromagnetism? Explain it on the basis of domain theory.
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Start your 14-day free trial to unlock the full solution →Ferromagnetic materials consist of domains that are individually saturated but randomly oriented until an external field aligns them, producing strong net magnetisation.
Ferromagnetism is the property shown by certain materials (iron, cobalt, nickel and their alloys) of acquiring strong magnetisation in the direction of an applied magnetic field, retaining substantial magnetisation even after the field is removed, and exhibiting hysteresis. Ferromagnetic materials have a high, field- and history-dependent (non-linear) susceptibility, .
Domain theory: A ferromagnetic material is imagined to consist internally of a very large number of small regions, each of macroscopic size but microscopically many-atoms-wide, called magnetic domains. Within a domain, the magnetic dipole moments of all the atoms are spontaneously aligned parallel to each other (due to strong quantum-mechanical exchange interaction between neighbouring atoms), so each domain is a fully saturated tiny magnet.
In an unmagnetised sample, however, these domains are randomly oriented relative to each other (to minimise the total magnetic energy), so their magnetic moments cancel out and the net magnetisation of the bulk material is zero.
When an external magnetic field is applied:
- At low , domains aligned favourably with the field grow at the expense of unfavourably-aligned domains (domain-wall motion) — this is largely reversible.
- At higher , the magnetic moments within domains rotate to align with the field direction — this process is less reversible and is responsible for hysteresis. …
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