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Q.Explain the concept of magnetic domains in ferromagnetic materials and analyse how their alignment leads to permanent magnetism. Compare the magnetic behavior of ferromagnetic, paramagnetic and diamagnetic materials in the presence of an external magnetic field. OR Under what condition does resonance occur in a series LCR circuit? Analyse the effect of resonance on current and impedance. Evaluate why resonance is not possible in pure RL or RC circuit.

Uttarakhand UbseUttarakhand Board Intermediate (Class 12) 2026Subjective· 4mImportance★★★★★
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Ferromagnetic domains align (grow/rotate) with an applied field and retain some alignment after it is removed, giving permanent magnetism; contrast with para/dia response.

Magnetic domains: In a ferromagnetic material, atomic magnetic dipoles cluster into small regions called domains, within each of which the atomic moments are already spontaneously aligned parallel to each other (due to strong quantum-mechanical exchange interaction), so each domain has its own net magnetic moment. In an unmagnetized sample, these domains are randomly oriented, so their moments cancel and the net magnetization is zero.

When an external magnetic field is applied, domains that are favourably oriented (aligned close to the field direction) grow in size at the expense of unfavourably oriented domains (domain-wall motion), and/or the domain moments rotate to align more closely with the field. As the field is increased further, this continues until the material reaches saturation, where it behaves essentially as a single domain aligned with the field. On removing the external field, domain walls do not fully relax back to the random state — a fraction of the alignment (and hence net magnetization) persists; this residual, retained alignment of domains is what constitutes permanent magnetism (and is the origin of hysteresis).

Comparison in an external field: Ferromagnetic — strongly attracted into the field; large, positive susceptibility (χ∼102\chi\sim10^2–10510^5); retains magnetization after the field is removed (hysteresis; permanent magnets). Paramagnetic — weakly attracted into the field; small, positive susceptibility (0<χ≪10<\chi\ll1); individual atomic moments partially align with the field but thermal agitation randomizes them again once the field is removed, so magnetization is lost. Diamagnetic — weakly repelled/pushed out of the field; small, negative susceptibility (χ∼−10−5\chi\sim-10^{-5}); the field induces an opposing moment (present in all materials, but usually masked by stronger para-/ferromagnetic effects) and there is no residual magnetization.

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