Atomic Radius Trends and Comparisons

Atomic Radius Trends and Comparisons

Assessment

Interactive Video

Created by

Emma Peterson

Chemistry

9th - 10th Grade

Hard

00:00

The video tutorial explains how to determine which of two atoms, chlorine (CL) or magnesium (Mg), has a larger atomic radius. It discusses the trends in atomic radius on the periodic table, noting that atomic radius increases down a group and decreases across a period. Since CL and Mg are in the same period, the tutorial concludes that Mg has a larger atomic radius than CL based on these trends.

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6 questions

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1.

MULTIPLE CHOICE

30 sec • 1 pt

Which two elements are being compared for their atomic radius in the video?

2.

MULTIPLE CHOICE

30 sec • 1 pt

What happens to the atomic radius as you move down a group in the periodic table?

3.

MULTIPLE CHOICE

30 sec • 1 pt

Why doesn't the trend down a group help in comparing chlorine and magnesium?

4.

MULTIPLE CHOICE

30 sec • 1 pt

What is the trend for atomic radius as you move across a period?

5.

MULTIPLE CHOICE

30 sec • 1 pt

Based on the periodic trends, which element has a larger atomic radius?

6.

MULTIPLE CHOICE

30 sec • 1 pt

What is the main conclusion about the atomic radius of magnesium compared to chlorine?