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Questions  

When the azimuthal quantum number has the value of 2, the number of orbitals possible are 

a
3
b
0
c
7
d
5

detailed solution

Correct option is D

Total values of m=(2l+1)=no. of orbitals in subshell.Where m= Magnetic quantum no.I=Azimuthal quantum no.where I=2 represents 'd" subshell and d- subshell. has five orbitals dxy,dyz,dzx,dx2−y2,dz2

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For the n = 2 energy level, how many orbitals of all kinds are possible


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