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Reviewer for First Grading Periodic Test (Part 3)

Total questions: 46

Worksheet time: 2hrs 9mins

Name
Class
Date
1.

What is the chemical symbol for iron?

a)

I

b)

Ir

c)

Fe

d)

R

2.

Titanium is in group 4. What period is it in?

a)

2

b)

3

c)

4

d)

5

3.

What family is copper in?

a)

alkali metals

b)

alkaline earth metals

c)

noble gases

d)

transition metals

4.

What is calcium's atomic number?

a)

20

b)

21

c)

22

d)

23

5.

What family is on the far right of the periodic table?

a)

alkali metals

b)

transition metals

c)

actinoids

d)

noble gases

6.

What family is on the far left of the periodic table?

a)

noble gases

b)

alkali metals

c)

transition metals

d)

actinoids

7.

What is mercury's chemical symbol?

a)

Me

b)

M

c)

Hg

d)

Mc

8.

What family does Hydrogen belong?

a)

Non-metal

b)

Noble Gas

c)

Halogen

d)

Metalloid

9.

Which of the following statements is TRUE?

a)

elements within a period have similar properties

b)

there are 7 periods on the periodic table

c)

different elements can have the same atomic number

10.

Write 10Ne electron distribution diagram (Separate between shell using "space" ex: 2 8 8 2

(a)  

11.

How many electrons can the first energy level (s level) hold?

a)
1
b)
2
c)
8
d)
0
12.
What atom matches this electron configuration?
1s22s22p63s2
a)
Neon
b)
Magnesium
c)
Aluminum
d)
Potassium
13.
Which electron configuration belongs to Chlorine (Cl)?
a)
1s2s2p3s3p5
b)
1s2s2p3s3p6
c)
1s2s2p3s3p7
14.

The 4 orbitals are

a)

s, p, d, f

b)

a, b, c, d

c)

2, 4, 6, 8

15.
How many electrons can the d sublevel hold?
a)
8
b)
10
c)
2
d)
4
16.

What do you start all electron configurations with?

a)

1s2

b)

1d10

c)

1f14

d)

1p6

17.

What atom matches this electron configuration? [Xe] 6s2

a)
Mercury
b)

Barium

c)
Platinum
d)
Thallium
18.
What is the shorthand electron configuration for Sulfur atom?
a)
[Ar] 3p4
b)
[He] 3s23p4
c)
[Ne] 3s23p4
d)
[Na] 3s23p3
19.
What noble gas should be used to write the shorthand configuration for Te?
a)
Ar
b)
Kr
c)
Xe
d)
Sb
20.

How many electrons can the f sublevel hold?

a)
8
b)
10
c)
2
d)

14

21.
Which element is pictured?
a)
neon
b)
fluorine
c)
magnesium
d)
argon
22.
Electron arrangement that uses arrows
a)
Electron configuration
b)
Shorthand configuration
c)
Lewis dot structure
d)
Orbital diagram
23.
What does Pauli exclusion principle state ?
a)
states that each electron occupies the lowest energy orbital available
b)
states that a maximum of two electrons can occupy a single atomic orbital, but if only if the electros have opposite spins
c)
states that single electrons electrons with the same spin must occupy each-energy orbital before additional electrons with opposite spins can occupy the same orbitals
24.
Electrons occupy orbitals of lowest energy first is part of what electron configuration rule?
a)
Hund’s Rule
b)
Aufbau Principle
c)
Pauli Exclusion Principle
25.

Each row on the periodic table represents:

a)

an energy level

b)

a sublevel

c)

an electron

d)

an orbital

26.

The spin of an electron is represented by this variable:

a)

n

b)

m

c)

L

d)

ms

27.

This is the shape of ____ orbital

a)

s

b)

d

c)

p

d)

d

28.

Orbital sublevels, or l, represents:

a)

orbital color

b)

orbital shape

c)

electron spin

d)

energy level

29.

Which of the following shows a proper pair of the l value with the orbital shape.

a)

0=f

b)

3=p

c)

1=s

d)

2=d

30.

How many electrons total are found in the f orbital?

a)

2

b)

6

c)

10

d)

14

31.

Which of the following is incorrect about the quantum variable m, or ml?

a)

m = -l...l

b)

the value for p is -1, 0, 1

c)

when l is 2, there are 5 values for m

d)

the value is either +1/2 or -1/2

32.

What is the correct representation for an orbital which has an "n" value of 4 and an "L" value of 2?

a)

4d

b)

4s

c)

4f

d)

4p

33.

What does the 1 in "1s" stand for?

a)

energy level

b)

s orbitals

c)

p orbitals

d)

the number of electrons

34.

How many electrons are in 1s2 2s2 2p4?

a)

5

b)

6

c)

8

d)

13

35.

Which set of quantum numbers n, l, ml, ms is invalid?

a)

1,1,0,-1/2

b)

2,0,0,+1/2

c)

3,1,0,+1/2

d)

4,3,+2,-1/2

36.

Which set of Quantum numbers is not allowed

a)

(3, 1, 1, -1/2)

b)

(2, 1, -2, +1/2)

c)

(4, 2, -1, -1/2)

d)

(3, 2, -2, +1/2)

37.

_______is the splitting of atomic nuclei

a)

Fission

b)

nuclear reaction

c)

Fusion

d)

bayler reaction

38.

How is the alpha particle written in a nuclear equation?

a)

42He

b)

24He

c)

0-1e

d)

00γ

39.
Which type of nuclear radiation is being emitted here?
a)
Alpha
b)
beta
c)
gamma 
d)
none
40.
Solve this equation for alpha decay.
85209At = ___ + 24He
a)
83205Bi
b)
86209Rn
c)
81207Tl
d)
85208At
41.

Gamma rays have

a)

no mass

b)

a huge mass

c)

a small mass

d)

an average mass

42.
Solve this equation for beta decay.
614C = ___ + -10e
a)
410Be
b)
714N
c)
210He
d)
613C
43.
Has the symbol
a)
Alpha
b)
Beta 
c)
Gamma
44.
Has the highest penetrating power.  Can penetrate our body.  Even several cm thick of lead or several meters thick of concrete cannot stop all of it.
a)
Alpha
b)
Beta
c)
Gamma
45.
Radioactive materials have unstable...
a)
electrons
b)
protons
c)
nuclei
d)
neutrons
46.
In a correctly written symbol what would be located in the "A" position?
a)
number of neutrons
b)
atomic number
c)
number of electrons 
d)
mass number