QUESTION IMAGE
Question
instructions: for each of the following pairs, predict which atom has the highest first ionization energy.
- ____ c, n
- ____ o, s
- ____ be, ca
- ____ mg, al
instructions: use the flaure shown below to answer question 13
Step1: Determine ionization energy trends
Ionization energy increases across a period (from left to right) and decreases down a group.
Step2: Analyze each pair
- For \(C\) and \(N\): They are in the same period. Since \(N\) is to the right of \(C\), \(N\) has higher ionization energy.
- For \(O\) and \(S\): They are in the same group. Since \(O\) is above \(S\), \(O\) has higher ionization energy.
- For \(Be\) and \(Ca\): They are in the same group. Since \(Be\) is above \(Ca\), \(Be\) has higher ionization energy.
- For \(Mg\) and \(Al\): \(Mg\) has a filled \(3s\) sub - shell (\([Ne]3s^{2}\)) and \(Al\) has \(3s^{2}3p^{1}\). Removing an electron from \(Mg\)'s stable filled sub - shell is harder, so \(Mg\) has higher ionization energy.
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- \(N\)
- \(O\)
- \(Be\)
- \(Mg\)