Periodic Trends Exam

Periodic Trends Exam

10th - 12th Grade

20 Qs

quiz-placeholder

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Periodic Trends Exam

Periodic Trends Exam

Assessment

Quiz

Chemistry

10th - 12th Grade

Hard

NGSS
HS-PS1-1, HS-PS1-2

Standards-aligned

Created by

Charles Martinez

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20 questions

Show all answers

1.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

As you move down a group, atomic radius increases because - 
you add more and more neutrons
you add more and more protons
you add more and more shells (energy levels)
you add more atomic mass

2.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

The atom with the largest atomic radius in Group 18 (The Noble Gases) is - 
Ar
He
Kr
Rn

Tags

NGSS.HS-PS1-1

3.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

As you move across the periodic table from left to right, the atomic radius decreases.  This is because - 
the number of protons increases, so attraction to electrons increases
the number of energy levels increases
the number of electrons increases
the atomic mass increases

Tags

NGSS.HS-PS1-1

NGSS.HS-PS1-2

4.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

The atom with the largest atomic radius in Period 4  is - 
K
Kr
Fe
Fe

Tags

NGSS.HS-PS1-1

5.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

The Br- anion is larger than the Br atom because - 
Br- has more electrons than Br, and more electrons repel each other
Br has more electrons than Br-, and more electrons repel each other
Br- has more protons, so it has more attraction for its electrons
Br has more protons, so it has more attraction for its electrons

6.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

If two ions are isoelectronic (i.e. Na+ and Mg2+), which one will be smaller in radius, and why?
Mg2+, because it has less electrons and greater repulsion between them
Mg2+, because it has more protons and greater attraction for its electrons
Na+, because it has less electrons and greater repulsion between them
Na+, because it has more protons and greater attraction for its electrons

Tags

NGSS.HS-PS1-1

7.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

Francium (Fr) has the lowest ionization energy in Group 1 because - 
it has the smallest number of valence electrons
it has the greatest atomic mass
it has the greatest number of protons, so it attracts its electrons the strongest
its 1 valence electron is very far from the nucleus, so little energy is needed to remove it

Tags

NGSS.HS-PS1-1

NGSS.HS-PS1-2

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