Q.Magnetic moment of is 5.92 BM. Explain giving reason.
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 →The magnetic moment of 5.92 BM corresponds to 5 unpaired electrons, which means Mn is in the +2 oxidation state with a configuration. The tetrahedral geometry of leads to weak-field ligands (Cl⁻), so no pairing occurs — giving a high-spin arrangement. The spin-only formula BM yields BM, confirming the structure.
Why magnetic moment tells us the story
Magnetic moment is a direct window into the number of unpaired electrons in a transition metal complex. For first-row transition metals, orbital contributions are often "quenched" by the crystal field, so the observed moment closely follows the spin-only formula:
where is the number of unpaired electrons and BM stands for Bohr magneton. If you measure BM, you can work backwards: gives , so . That is the maximum possible for a subshell — five unpaired electrons.
The question then becomes: how does a manganese complex end up with five unpaired electrons? That depends on the oxidation state of Mn, the geometry of the complex, and the ligand field strength.
Step-by-step reasoning
- Find the oxidation state of manganese. The complex ion is . Each chloride ligand carries a charge. Let the oxidation state of Mn be . Then:
So manganese is in the +2 oxidation state. The electronic configuration of neutral Mn () is . Removing two electrons (to form Mn²⁺) removes the 4s electrons first, leaving .
-
Determine the geometry.
The formula has four ligands. Four-coordinate complexes are either tetrahedral or square planar. For Mn²⁺, which is a system, tetrahedral geometry is far more common — especially with chloride, a weak-field ligand. Square planar geometry is typical for ions (like Ni²⁺, Pt²⁺), not . So the geometry is tetrahedral.
-
Apply crystal field theory for a tetrahedral field.
In a tetrahedral field, the orbitals split into two sets:
- Lower energy: set (, )
- Higher energy: set (, , ) The splitting energy is smaller than the octahedral splitting — roughly . Chloride is a weak-field ligand (low in the spectrochemical series), so is very small.
-
Fill the orbitals according to Hund's rule.
With a small , the pairing energy is larger than the splitting energy. So electrons will not pair up — they occupy all five orbitals singly before any pairing occurs. The filling order:
- set: two orbitals, each gets one electron (parallel spins)
- set: three orbitals, each gets one electron (parallel spins) This gives five unpaired electrons — a high-spin configuration. …
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.