QUESTION IMAGE
Question
which of the following would you put in box f? * (0.5 points)
1 $1s^{2}2s^{2}2p^{6}3s^{2}3p^{6}4s^{2}3d^{10}4p^{5}$
2 $1s^{2}2s^{2}2p^{4}$
3 $1s^{2}$
4 $xe6s^{2}4f^{4}$
5 $1s^{2}2s^{2}2p^{6}3s^{2}3p^{6}4s^{2}3d^{7}$
6 $ne3s^{2}$
Step1: Identify the block of each option
- Option 1: Ends with \(4p^{5}\), so it is in the \(p -\)block.
- Option 2: Ends with \(2p^{4}\), so it is in the \(p -\)block.
- Option 3: Ends with \(1s^{2}\), so it is in the \(s -\)block.
- Option 4: Ends with \(4f^{4}\), so it is in the \(f -\)block.
- Option 5: Ends with \(3d^{7}\), so it is in the \(d -\)block.
- Option 6: Ends with \(3s^{2}\), so it is in the \(s -\)block.
Step2: Match with the \(f -\)block (box F)
Since box F is in the \(f -\)block, we look for the electron - configuration that has an \(f -\)orbital in its outer - most occupied orbital.
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- \([Xe]6s^{2}4f^{4}\)