QUESTION IMAGE
Question
instructions: in each question, list the elements from least to greatest atomic radius:
- cesium (cs), potassium (k), sodium (na)
- phosphorus (p), aluminum (al), magnesium (mg)
- zinc (zn), oxygen (o), rubidium (rb)
4)
Step1: Analyze the group
These elements (Cs, K, Na) are in Group 1 (alkali metals). As we move down a group in the periodic table, the atomic radius increases because a new electron shell is added.
Step2: Compare their positions
Na is in the 3rd period, K in the 4th period, and Cs in the 6th period. These elements (P, Al, Mg) are in the 3rd period. In a period, as we move from left to right, the atomic radius decreases because the nuclear charge increases (more protons attract the electrons more strongly). Mg is in Group 2, Al in Group 13, and P in Group 15. O is in the 2nd period (smallest as it has fewer electron shells compared to the others). Zn is in the 4th period (d - block element), and Rb is in the 5th period (Group 1, alkali metal). As we move down the periodic table, atomic radius increases. Also, Rb (Group 1) has a larger radius than Zn (d - block in the same period as it has a less - effective nuclear charge in terms of shielding).
So the order from least to greatest atomic radius is \(Na5)
Step1: Analyze the period
Step2: Compare their positions
So the order from least to greatest atomic radius is \(P6)
Step1: Analyze the positions
Step2: Compare atomic radii trends
So the order from least to greatest atomic radius is \(O
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- \(Na
- \(P
- \(O
- \(P