QUESTION IMAGE
Question
g. circle the element with the larger radius:
- aluminum or sodium 2. barium or sodium
- fluorine of chlorine 4. calcium or arsenic
h. circle the element with the lowest electronegativity:
- sodium or magnesium 2. gallium or boron
- iodine or fluorine 4. calcium or barium
i. cirlce correct answer:
Brief Explanations
- Atomic Radius Trends:
- In the periodic table, atomic radius increases down a group (due to more electron shells) and decreases across a period (as effective nuclear charge increases).
- For G1: Sodium (\(Na\)) and Aluminum (\(Al\)) are in the same period (\(3^{rd}\)). Since atomic radius decreases across a period, \(Na\) (group \(1\)) has a larger radius than \(Al\) (group \(13\)).
- For G2: Barium (\(Ba\)) is in period \(6\) and Sodium (\(Na\)) in period \(3\). As atomic radius increases down a group (more shells), \(Ba\) has a larger radius.
- For G3: Chlorine (\(Cl\)) and Fluorine (\(F\)) are in the same group (\(17\)). Since atomic radius increases down a group, \(Cl\) (period \(3\)) has a larger radius than \(F\) (period \(2\)).
- For G4: Calcium (\(Ca\)) and Arsenic (\(As\)) are in the same period (\(4^{th}\)). As atomic radius decreases across a period, \(Ca\) (group \(2\)) has a larger radius than \(As\) (group \(15\)).
- Electronegativity Trends:
- Electronegativity increases across a period (due to increased nuclear charge) and decreases down a group (as atoms get larger, electrons are less tightly held).
- For H1: Sodium (\(Na\)) and Magnesium (\(Mg\)) are in the same period (\(3^{rd}\)). As electronegativity increases across a period, \(Na\) (group \(1\)) has lower electronegativity than \(Mg\) (group \(2\)).
- For H2: Gallium (\(Ga\)) is in period \(4\) and Boron (\(B\)) in period \(2\). As electronegativity decreases down a group, \(Ga\) has lower electronegativity.
- For H3: Iodine (\(I\)) and Fluorine (\(F\)) are in the same group (\(17\)). As electronegativity decreases down a group, \(I\) (period \(5\)) has lower electronegativity than \(F\) (period \(2\)).
- For H4: Barium (\(Ba\)) is in period \(6\) and Calcium (\(Ca\)) in period \(4\). As electronegativity decreases down a group, \(Ba\) has lower electronegativity.
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- G. Larger Radius:
- 1. Sodium
- 2. Barium
- 3. Chlorine
- 4. Calcium
- H. Lowest Electronegativity:
- 1. Sodium
- 2. Gallium
- 3. Iodine
- 4. Barium