Q.What is paramagnetic substance?
🔒You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Paramagnetism
Paramagnetism: The Story of Tiny Magnets That Want to Follow
Imagine you're in a dark room with a handful of compass needles scattered on a table. Each needle has its own north-south direction, pointing every which way. Now switch on a big electromagnet nearby. What happens? Each compass needle tries to turn and align with the external field — but thermal jostling (the random shaking from heat) fights that alignment. Some needles succeed, most don't. The result is a weak, partial alignment in the direction of the field.
That is paramagnetism in a nutshell.
The Atomic Picture
Every atom or molecule in a paramagnetic material carries a permanent magnetic dipole moment — a tiny, built-in magnet. This moment comes from unpaired electrons in the atom's orbitals. In most materials, electrons pair up and their magnetic moments cancel. But in paramagnetic substances (like aluminium, platinum, or oxygen gas), some electrons remain unpaired, leaving a net magnetic moment on each atom.
Without an external field, these atomic magnets point in random directions. The material as a whole shows no net magnetisation. Apply a magnetic field, and each tiny magnet experiences a torque that tries to rotate it into alignment with the field. But thermal energy (kBT) constantly randomises the directions. The competition between alignment energy (μB) and thermal energy (kBT) determines how many moments actually line up.
The Key Result: Curie's Law
For most paramagnets, the magnetisation M (the net magnetic moment per unit volume) is proportional to the applied field B and inversely proportional to the absolute temperature T:
M=CTB
where C is the Curie constant (depends on the material). The magnetic susceptibility χ=M/H (roughly M/B in SI) is therefore:
χ=TC
This is Curie's law. The susceptibility is positive (magnetisation is in the same direction as the field) but small — typically 10−5 to 10−3 — and it decreases as temperature rises.
χparamagnetic=TC
The positive sign of χ distinguishes paramagnetism from diamagnetism (where χ is negative and temperature-independent). The 1/T dependence is the hallmark — heat destroys alignment.
Why Is the Effect So Weak?
Even at room temperature, kBT is much larger than μB for ordinary fields. For a typical atomic moment μ≈10−23 J/T and a field B≈1 T, the alignment energy μB≈10−23 J, while kBT≈4×10−21 J at 300 K. That's a factor of 400 difference. Only a tiny fraction of moments align — hence the small susceptibility. …
In a paramagnetic substance the individual atoms already carry a net magnetic dipole moment (usually from unpaired electrons), and an external field partially aligns these otherwise thermally-randomised dipoles along its own direction. …
Paramagnetic materials have unpaired-electron atomic dipoles that partially align with an external field, giving weak magnetisation in the field's own direction.
In a paramagnetic substance, individual atoms or molecules possess a net (permanent) magnetic dipole moment, usually due to unpaired electrons. In the absence of an external field, these dipoles are randomly oriented due to thermal agitation, so the net magnetisation is zero.
…
- CBSE 2025Set ANNUAL1 markQ.Magnetic susceptibility of a magnetic material is 1.9×10−5. What type of magnetic material is this?
›Reveal solutionSolution
A small positive susceptibility (χ∼10−5) is characteristic of paramagnetic materials.
Magnetic susceptibility χ classifies materials: diamagnetic materials have a small negative χ (of order −10−5), paramagnetic materials have a small positive χ (of order 10−5 to 10−3), and ferromagnetic materials have very large positive χ (of order 103–105). He …
- CBSE 2025Set ANNUAL1 markQ.Magnetic susceptibility chi of a paramagnetic substance is ____________.
›Reveal solutionSolution
Paramagnetic materials are weakly attracted into a magnetic field, corresponding to a small positive susceptibility that falls off as temperature rises.
Magnetic susceptibility χ=M/H relates the magnetisation M induced in a material to the applied field H. For a paramagnetic substance, the atomic magnetic dipoles align weakly with the applied field (partially, against thermal randomisation), giving a small positive susceptibility (χ>0, typically of order 10−3 to 10−5). By Curi …
- CBSE 2024Set ANNUAL1 markQ.What is paramagnetic substance?
›Reveal solutionSolution
Paramagnetic materials have unpaired-electron atomic dipoles that partially align with an external field, giving weak magnetisation in the field's own direction.
In a paramagnetic substance, individual atoms or molecules possess a net (permanent) magnetic dipole moment, usually due to unpaired electrons. In the absence of an external field, these dipoles are randomly oriented due to thermal agitation, so the net magnetisation is zero.
…
- CBSE 2023Set ANNUAL1 markQ.Select two paramagnetic materials from the following: Sodium (Na), Bismuth (Bi), Copper (Cu), Aluminum (Al), Lead (Pb).
›Reveal solutionSolution
Of the given elements, sodium and aluminium are paramagnetic; bismuth, copper and lead are diamagnetic.
Paramagnetic materials have unpaired electrons giving each atom a small net magnetic moment, so they are weakly attracted along an external field; diamagnetic materials have all electrons paired (no net atomic moment) and are weakly repelled. Among Sodium (Na), Bismuth (Bi), Copper (Cu), Aluminum (Al …
- CBSE 2019Set ANNUAL1 markMCQQ.The susceptibility of paramagnetic substance is -(a) Constant(b) Zero(c) Infinity(d) Depends on magnetic field
›Reveal solutionSolution
A paramagnetic substance has a small, positive susceptibility that is constant (field-independent) at a fixed temperature.
Magnetic susceptibility χ = M/H. For a paramagnetic material χ is small and positive, and it does not depend on the applied magnetic field — at a given temperature it is a fixed constant (it varies only with temperature, obeying Curie's …
🎓Unlock everything free for 14 days
- ✓Full step-by-step solutions
- ✓Concept-first explanations
- ✓Methods, shortcuts & mistakes
- ✓PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.