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question 4. identify the element with the greatest ionization energy. a…

Question

question 4. identify the element with the greatest ionization energy.
a) nitrogen (n), rubidium (rb), copper (cu)
b) tellurium (te), indium (in), chlorine (cl)

Explanation:

Step1: Recall Ionization Energy Trends

Ionization energy (IE) generally increases across a period (left to right) and decreases down a group (top to bottom) in the periodic table. This is because as we move across a period, the effective nuclear charge increases, pulling electrons closer, so more energy is needed to remove an electron. Down a group, electrons are in higher energy levels (larger atomic radius), so less energy is needed to remove them.

Step2: Analyze Part a) - N, Rb, Cu

  • Nitrogen (N): Period 2, Group 15.
  • Rubidium (Rb): Period 5, Group 1. Alkali metals have low IE (easiest to lose electrons).
  • Copper (Cu): Period 4, Group 11 (transition metal).

Compare their positions: N is in a higher period (2 vs Rb's 5, Cu's 4) and further right in the period than Cu. So N has a higher effective nuclear charge and smaller atomic radius than Rb and Cu. Thus, N has the highest IE among N, Rb, Cu.

Step3: Analyze Part b) - Te, In, Cl

  • Tellurium (Te): Period 5, Group 16.
  • Indium (In): Period 5, Group 13.
  • Chlorine (Cl): Period 3, Group 17.

Compare positions: Cl is in a lower period (3 vs Te and In's 5) and further right (Group 17 vs Te's 16, In's 13). So Cl has a higher effective nuclear charge and smaller atomic radius than Te and In. Thus, Cl has the highest IE among Te, In, Cl.

Answer:

a) Nitrogen (N)
b) Chlorine (Cl)