The spin only magnetic moment of complexes is _____ B.M. (Nearest integer)
Given: Atomic no. of Mn is
The spin only magnetic moment of complexes is _____ B.M. (Nearest integer)
Given: Atomic no. of Mn is
Correct answer:6
Standard Method
Given: The complex is and atomic number of Mn is .
Find: The spin-only magnetic moment in B.M. to the nearest integer.
The electronic configuration of Mn is .
In , Mn is in the oxidation state. Water is a weak field ligand.
Electronic configuration of is .
Since is a weak field ligand, there will be no pairing of electrons in the orbitals.
Number of unpaired electrons:
Spin-only magnetic moment:
Substituting :
Nearest integer:
Therefore, the spin-only magnetic moment is nearest to , so the answer is .
Electron Counting Detail
Given: Mn has atomic number and the complex is .
Find: The nearest integer value of the spin-only magnetic moment.
First identify the metal ion state. Since water is neutral, the charge on manganese in the complex is .
Neutral Mn:
Removing two electrons for gives:
Now use the ligand property stated in the solution: is a weak field ligand, so the complex remains high spin and the five electrons stay unpaired.
Thus:
Apply the spin-only formula:
So the nearest integer value is .
Therefore, the numerical answer is .
Taking Mn in the wrong oxidation state is a common mistake. In , water is a neutral ligand, so manganese must be . First determine the oxidation state correctly, then write the configuration of .
Assuming electron pairing occurs is incorrect here. is a weak field ligand, so for the complex is high spin with unpaired electrons. Do not force pairing unless the ligand is strong field.
Using the wrong value of in gives the wrong answer. Here is the number of unpaired electrons, not the number of total electrons or ligands. Count only unpaired electrons before substituting.
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