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Question
instructions: for each of the following pairs, determine which atoms will form a positive ion more easily. 14.___ mg, sr 15._ k, ca 16._ li, b 17.___ rb, sn
Brief Explanations
- For 14. Mg vs Sr:
- As we move down a group in the periodic table, the atomic radius increases.
- Larger atoms have less attraction for their valence electrons.
- Strontium (Sr) is below Magnesium (Mg) in Group 2. So, Sr will lose electrons more easily to form a positive ion.
- For 15. K vs Ca:
- Potassium (K) is in Group 1 and Calcium (Ca) is in Group 2.
- Group 1 elements have a lower ionization energy (energy required to remove an electron) than Group 2 elements in the same period.
- K has one valence electron and Ca has two. K will lose its single valence electron more easily to form a positive ion.
- For 16. Li vs B:
- Lithium (Li) is in Group 1 and Boron (B) is in Group 13.
- Group 1 elements have a much lower ionization energy than Group 13 elements.
- Li will lose its valence electron more easily to form a positive ion.
- For 17. Rb vs Sn:
- Rubidium (Rb) is in Group 1 and Tin (Sn) is in Group 14.
- Group 1 elements have a very low ionization energy compared to Group 14 elements.
- Rb will lose its valence electron more easily to form a positive ion.
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- Sr
- K
- Li
- Rb