Q.Above Curie temperature, a (A) ferromagnetic material becomes diamagnetic. (B) ferromagnetic material becomes paramagnetic. (C) paramagnetic material becomes ferromagnetic. (D) paramagnetic material becomes diamagnetic.
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Start your 14-day free trial to unlock the full solution →Above the Curie temperature, a ferromagnetic material loses its spontaneous magnetization and behaves like a paramagnet. The correct option is (B).
Why this question tests a key phase transition
The Curie temperature () is a critical point for ferromagnetic materials. Below , the material has a permanent magnetic moment even without an external field — this is spontaneous magnetization, caused by the alignment of atomic magnetic moments due to exchange interaction. Above , thermal energy overwhelms this cooperative alignment, and the material becomes paramagnetic: it still responds to an external field, but weakly and without any permanent magnetization.
The other options are traps. A ferromagnet does not become diamagnetic — diamagnetism is a completely different, universal but very weak effect present in all materials. A paramagnet cannot become ferromagnetic above its own Curie temperature (if it has one), and it certainly doesn't become diamagnetic.
Let’s walk through the reasoning step by step.
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What is a ferromagnetic material?
In a ferromagnet (like iron, nickel, cobalt), atomic magnetic moments align parallel to each other over large regions (domains) even in zero external field. This alignment is due to quantum mechanical exchange interaction, which is strong enough to overcome thermal agitation below .
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What happens at the Curie temperature?
As temperature rises, thermal energy increases. At , the thermal energy becomes comparable to the exchange energy. The spontaneous magnetization drops to zero. Above , the moments are randomly oriented — no long-range order remains.
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What is the magnetic behaviour above ?
Without an external field, the net magnetization is zero. When an external field is applied, the moments partially align with it, producing a small positive susceptibility. This is exactly paramagnetic behaviour. The susceptibility follows the Curie–Weiss law:
where is the Curie constant. This is a modified version of the Curie law for paramagnets (), showing that the transition is continuous.
- Why not diamagnetic? …
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