QUESTION IMAGE
Question
fill out the table below based on the periodic table and the electron configurations given:
element
oxygen (o)
phosphorus (p)
electron configuration
total # of electrons
of valence electrons
Step1: Determine electron configuration
- For Oxygen (O): Atomic number is 8. Electron configuration is \(1s^{2}2s^{2}2p^{4}\)
- For Phosphorus (P): Atomic number is 15. Electron configuration is \(1s^{2}2s^{2}2p^{6}3s^{2}3p^{3}\)
Step2: Calculate total number of electrons
- Oxygen (O): From electron configuration \(2 + 2+4=8\)
- Phosphorus (P): From electron configuration \(2 + 2+6 + 2+3 = 15\)
Step3: Calculate number of valence electrons
- For Oxygen (O): Valence shell is \(2s^{2}2p^{4}\), so \(2 + 4=6\)
- For Phosphorus (P): Valence shell is \(3s^{2}3p^{3}\), so \(2+3 = 5\)
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| Element | Electron Configuration | Total # of Electrons | # of Valence Electrons |
|---|---|---|---|
| Phosphorus (P) | \(1s^{2}2s^{2}2p^{6}3s^{2}3p^{3}\) | \(15\) | \(5\) |