Question
Question: When the value of the azimuthal quantum number is 3, the maximum and the minimum values of the spin ...
When the value of the azimuthal quantum number is 3, the maximum and the minimum values of the spin multiplicities are:
A. 4, 3
B. 8, 1
C. 1, 3
D. 8, 2
Solution
By using Azimuthal quantum number it is easy to find the orbital angular momentum and shape of the orbital. The Azimuthal quantum number is going to be denoted with a symbol l.
l value for s, p, d and f orbitals are 0, 1, 2 and 3 respectively.
There is a formula to calculate the spin multiplicity and it is as follows.
Spin multiplicity = 2S+1, here S = spin of the all electrons present in the orbital.
Complete step by step answer:
- In the question it is given that azimuthal quantum number is 3 and we have to find the maximum and minimum value of the multiplicities.
- We know that l value is 3 for f-orbital.
- The maximum number of unpaired electrons that can be accommodated in f-orbital are 7.
- Therefore for 7 electrons the spin quantum number S = (7×21)=27
- Thus the maximum spin multiplicity is as follows.