Answer: 50%
Explanation:
The number of electron pairs are 2 for hybridization to be [tex]sp[/tex] and the electronic geometry of the molecule will be linear.
1. percentage of s character in sp hybrid orbital =[tex]\frac{\text {number of s orbitals}}{\text {total number of orbitals}}=\frac{1}{2}\times 100=50\%[/tex]
2. percentage of s character in [tex]sp^2[/tex] hybrid orbital =[tex]\frac{\text {number of s orbitals}}{\text {total number of orbitals}}=\frac{1}{3}\times 100=33.3\%[/tex]
3. percentage of s character in [tex]sp^3[/tex] hybrid orbital =[tex]\frac{\text {number of s orbitals}}{\text {total number of orbitals}}=\frac{1}{4}\times 100=25\%[/tex]
Thus percentage of s-character in an sp hybrid is 50%.
