QUESTION IMAGE
Question
- based on their positions in the periodic table, predict which has the smallest first ionization energy: li, cs, n, f, i
Step1: Recall ionization energy trend
First ionization energy generally increases across a period (left to right) and decreases down a group (top to bottom) in the periodic table.
Step2: Analyze positions of elements
- Li (lithium) and Cs (cesium) are in Group 1 (alkali metals). Cs is below Li in the group.
- N (nitrogen), F (fluorine) are in Period 2, Group 15 and 17 respectively. I (iodine) is in Group 17, below F.
- For Group 1, as we go down (Li → Cs), ionization energy decreases. Among N, F, I, F has higher ionization energy than N (across period) and I (down group).
- Comparing Cs (Group 1, lower position) with others: Cs is lower in the group than Li, and in lower groups than N, F, I. So Cs will have the smallest first ionization energy.
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Cs (Cesium)