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Question
ccc patterns electron affinity and ionization energy appear to be opposing concepts. explain, using main group elements only, why they both share similar periodic trends in a period and column.
Electron affinity is the energy change when an atom gains an electron. Ionization energy is the energy required to remove an electron. In a period, as atomic number increases, atomic radius decreases. For electron affinity, smaller atoms can attract electrons more effectively (higher electron affinity). For ionization energy, smaller atoms hold electrons more tightly (higher ionization energy). In a column (group), as atomic number increases, atomic radius increases. Larger atoms in a group have lower electron affinity (less effective electron - attraction) and lower ionization energy (easier to remove electrons as they are farther from the nucleus).
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Electron affinity and ionization energy share similar periodic trends because both are influenced by atomic radius. In a period, decreasing atomic radius leads to higher electron affinity (better electron - attraction) and higher ionization energy (tighter electron - hold). In a column, increasing atomic radius leads to lower electron affinity (poorer electron - attraction) and lower ionization energy (easier electron - removal).