QUESTION IMAGE
Question
which one of the following orbitals has the greatest number of nodes? 4p 2p 5p 1p 3p
Step1: Recall node - formula
The number of nodes in an orbital is given by $n - 1$, where $n$ is the principal quantum number.
Step2: Analyze each option
- For $4p$: $n = 4$, number of nodes $=4 - 1=3$.
- For $2p$: $n = 2$, number of nodes $=2 - 1 = 1$.
- For $5p$: $n = 5$, number of nodes $=5 - 1=4$.
- For $1p$: The $1p$ orbital does not exist as for $n = 1$, the only possible $l$ value is $0$ (s - orbital), not $1$ (p - orbital).
- For $3p$: $n = 3$, number of nodes $=3 - 1=2$.
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C. $5p$