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On Level Chemistry Final Exam

 1. 

Which of the following models best represents the shape of a compound with trigonal planar geometry?
a.
mc001-1.jpg
c.
mc001-3.jpg
b.
mc001-2.jpg
d.
mc001-4.jpg
 

 2. 

The correct formula for sodium oxide is
a.
SO2
b.
S2O
c.
Na2O
d.
NaO2
 

 3. 

Which of the following atoms have the largest atomic radius?
a.
barium (Ba)
c.
chlorine (Cl)
b.
iodine (I)
d.
magnesium (Mg)
 

 4. 

What is the name of the compound whose formula is H2SO4?
a.
sulfuric acid
c.
sulfurous acid
b.
hydrosulfurous acid
d.
hydrosulfuric acid
 

 5. 

Which of the following elements has an electron configuration of 1s22s22p63s23p1?
a.
phosphorous
c.
lithium
b.
aluminum
d.
calcium
 

 6. 

Which element within any given period of the Periodic Table would always have the lowest first ionization energy?
a.
a noble gas
c.
an alkali metal
b.
an alkaline earth metal
d.
a halogen
 

 7. 

What is the Lewis dot structure for nitogen trifluoride (NF3)
a.
mc007-1.jpg
c.
mc007-3.jpg
b.
mc007-2.jpg
d.
mc007-4.jpg
 

 8. 

According to the Brønsted-Lowry definition, an acid is any species that can
a.
donate an electron
c.
accept a proton
b.
accept an electron
d.
donate a proton
 

 9. 

Which of the following is a correct Lewis dot structure for potassium chloride?
a.
mc009-1.jpg
c.
mc009-3.jpg
b.
mc009-2.jpg
d.
mc009-4.jpg
 

 10. 

What is the percent mass oxygen in acetone (C3H6O)? 
a.
62.0 %
b.
27.6 %
c.
1.00 %
d.
10.3 %
 

 11. 

Carbon reacts with chlorine to form CCl4.  What is the name of this compound?
a.
tetracarbon chloride
c.
carbon 4-chloride
b.
1-carbon 4-chloride
d.
carbon tetrachloride
 

 12. 

Which orbital notation shows the lowest energy arrangement of valence electrons for 1s22s22p3?
a.
mc012-1.jpg
b.
mc012-2.jpg
c.
mc012-3.jpg
d.
mc012-4.jpg
 

 13. 

A neon sign is being made with 80 grams of neon.  How many atoms are contained the neon sign?
a.
4.80 x 1024 atoms
c.
1.20 x 1024 atoms
b.
2.40 x 1024 atoms
d.
6.02 x 1023 atoms
 

 14. 

A person attemps to fill their car tires with 9.03x1023 molecules of nitrogen gas (N2).  How many moles did the person attempt to put in the tires?
a.
0.667 moles
c.
1.50 moles
b.
42.0 moles
d.
33.6 moles
 

 15. 

Which statement describes a chemical property of iron?
a.
Iron conducts electricity and heat.
b.
Iron can be flattened into sheets.
c.
Iron combines with oxygen to form rust.
d.
Iron can be drawn into a wire.
 

 16. 

What is the molarity of a KF (aq) solution containing 116 g of KF in 1.00 L of solution?
a.
2.00 M
b.
1.00 M
c.
3.00 M
d.
4.00 M
 

 17. 

Given the reaction:
mc017-1.jpg
How many moles of C6H12O6 (s) are needed to produce 24 moles of carbon dioxide?
a.
1.0 mole
b.
12 moles
c.
4.0 moles
d.
24 moles
 

 18. 

The covalent bonds in water are polar because
a.
O and H are equally electronegative.
c.
O is more electronegative than H.
b.
H is more electronegative than O.
d.
water molecules are cohesive.
 

 19. 

What is the total number of electrons present in an atom of mc019-1.jpg?
a.
59
b.
27
c.
32
d.
86
 

 20. 

Ethanol (C2H5OH) is used in hand sanatizer.  If 115 grams of C2H5OH is used to to make a batch of hand sanatizer, then how many moles are present in the batch? (MM: 46.08 g/mol)
a.
2.50 mol
c.
1.00 mol
b.
3.00 mol
d.
1.50 mol
 

 21. 

What causes NH3 to have it’s shape, according to VSEPR theory?
a.
repulsive forces between unshared pairs of electrons and bonds
b.
interaction between the fixed orbitals of the unshared pairs of hydrogen
c.
ionic attraction and repulsion
d.
the unusual location of the free electrons
 

 22. 

1s22s22p63s23p64s1 is the electron configuration for which element?
a.
potassium (K)
c.
aluminum (Al)
b.
argon (Ar)
d.
calcium (Ca)
 

 23. 

Beryllium is classified as
a.
an alkali metal
c.
a noble gas
b.
an alkaline earth metal
d.
a transition metal
 

 24. 

What trend can be seen as the atomic number increases in period 3?
a.
increasing electronegativity
c.
decreasing first ionization energy
b.
increasing atomic radius
d.
decreasing atomic mass
 

 25. 

An atom of lithium-7 has an equal number of
a.
electrons and protons
c.
positrons and neutrons
b.
positrons and protons
d.
electrons and neutrons
 

 26. 

Which of the following factors contributes to the increase in atomic size within a group in the periodic table as the atomic number increases?
a.
fewer electrons in the highest occupied energy level
b.
an increase in size of the nucleus
c.
an increase in number of protons
d.
more shielding of the electrons in the highest occupied energy level
 

 27. 

Which of the following elements has the smallest atomic radius?
a.
K
b.
Li
c.
O
d.
S
 

 28. 

What is the pH of a 0.01 M solution of KOH?
a.
12
b.
2
c.
13
d.
1
 

 29. 

The H3O+ ion concentration of a solution is 1 x 10-4 M.  This solution is
a.
basic and has a pH of 10
c.
basic and has a pH of 4
b.
acidic and has a pH of 4
d.
acidic and has a pH of 10
 

 30. 

The solid block shown here has a mass of 146 grams.  What is the block’s density?
mc030-1.jpg
a.
2.7 g/cm3
c.
8.1 g/cm3
b.
0.37 g/cm3
d.
54 g/cm3
 

 31. 

Which pair of elements form an ionic bond with each other?
a.
PCl
b.
KCl
c.
CCl
d.
ICl
 

 32. 

Which of the following quantum leaps of an electron would be associated with the greatest energy of emitted light?
a.
Energy Level = 4 to  5
b.
Energy Level=  6 to  5
c.
Energy Level  = 5 to  2
d.
Energy Level = 5 to  1
 

 33. 

Which subatomic particles are located in the nucleus of a neon atom?
a.
electrons and protons
c.
electrons and neutrons
b.
protons and neutrons
d.
protons and electrons
 

 34. 

Chemical equations must be balanced to satisfy
a.
the law of definite proportions.
b.
the law of conservation of mass.
c.
the law of multiple proportions.
d.
Avogadro’s principle.
 

 35. 

Which group contains elements with a total of four electrons in the outermost energy level (valence shell)?
a.
Group 4A
b.
Group 2A
c.
Group 6A
d.
Group 1A
 

 36. 

Which graph shows the pressure-temperature realationship expected for an ideal gas?
a.
mc036-1.jpg
c.
mc036-3.jpg
b.
mc036-2.jpg
d.
mc036-4.jpg
 

 37. 

How many moles of CH4 are contained in 96.0 grams of  CH4?
a.
6.00 moles
c.
12.0 moles
b.
3.00 moles
d.
16.0 moles
 

 38. 

In theory, how many grams of H2O can be produced according to the above information? (MM H2S = 34.082 g/mol ; MM SO2 = 64.064 g/mol; MM H2O = 18.015 g/mol )
2 H2S (g) + SO2 (g) mc038-1.jpg 3 S (g) + 2 H2O (g)





a.
3.96 grams
c.
1.98 grams
b.
1.50 grams
d.
7.17 grams
 

 39. 

What formula represents lead (II) phosphate?
a.
PbPO4
c.
Pb2(PO4)3
b.
Pb3(PO4)2
d.
Pb4PO4
 

 40. 

What is the name for the compound FeS
a.
iron (III) sulfate
c.
iron (II) sulfate
b.
iron (III) sulfide
d.
iron (II) sulfide
 

 41. 

Given a pH of 3.8, which of the following is true?
a.
can be neutralized by a strong acid
c.
has a slightly basic pH
b.
Contains more OH- ions than H+ ions
d.
contains more H+ ions than OH-
 

 42. 

In a solution, litmus paper turned blue.  The pH of this solution could be
a.
10
b.
2
c.
3
d.
4
 

 43. 

Which sample of matter is a pure substance?
a.
air (O2, N2, CO2)
c.
ammonia gas (NH3)
b.
salt water (NaCl + H2O)
d.
hydrochloric acid solution (HCl + H2O)
 

 44. 

Sulfur dioxide is the cause of acid rain and is common pollutant caused by volcanic eruptions, the burning of fossil fuels, and the exhaust from industrial facilities.  What is the mass in gram of 0.75 mole of SO2? (MM: 64.07 g/mol)
a.
16 g
c.
48 g
b.
32 g
d.
24 g
 

 45. 

What is the total number of molecules in 1.0 mole of Cl2 (g)?
a.
12 x 1024
c.
70
b.
6.02 x 1023
d.
35
 

 46. 

Which set of procedures and observations indicates a chemical change
a.
Ethanol is added to an empty beaker and the ethanol eventually disappears.
b.
A cool, shiny metal is added to water in a beaker and rapid bubbling occurs.
c.
A solid is gently heated in a crucible and the solid slowly turns to liquid.
d.
Large crystals are crushed with a mortar and pestle and become powder.
 

 47. 

Metallic bonds occur between atoms of
a.
sulfur
b.
copper
c.
fluorine
d.
neon
 

 48. 

One of the wavelengths emitted by hydrogen atoms is
6.56 x 10-7 m. Calculate the frequency if the speed of light is 3.00 x 108 m/s..
a.
4.57 x 1014 Hz
c.
4.57 x 10-6 Hz
b.
4.57 x 10-7 Hz
d.
1.97 x 1014 Hz
 

 49. 

What is the maximum number of orbitals in the p sublevel?
a.
5
b.
2
c.
4
d.
3
 

 50. 

In the reaction
mc050-1.jpg
an acid-base conjugate pair is
a.
mc050-2.jpg and mc050-3.jpg
c.
mc050-6.jpg and mc050-7.jpg
b.
mc050-4.jpg and mc050-5.jpg
d.
mc050-8.jpg and mc050-9.jpg
 

 51. 

If 75.0 % of the isotope of an element have a mass of 35.0 amu and 25.0 % of the isotopes have a mass of 37.0 amu, what is the average atomic mass of the element?
a.
36.0 amu
b.
35.0 amu
c.
37.0 amu
d.
35.5 amu
 

 52. 

Orange light has a frequency of 5.0 x 1014 Hz (hertz) in a vaccuum.  What is the wavelength of this light?
a.
6.0 x 10- 7 m
c.
1.5 x 1023 m
b.
1.7 x 106 m
d.
2.0 x 10-15 m
 

 53. 

Given the unbalanced equation:
mc053-1.jpg
What is the coefficient in front of the CaSO4 when the equation is completely balanced with the smallest whole-number coefficients?
a.
4
b.
3
c.
1
d.
2
 

 54. 

An atom is electrically neutral because the
a.
ratio of the number of neutrons to the number of electrons is 1:1.
b.
number of protons equals the number of neutrons.
c.
number of protons equals the nubmer of electrons.
d.
ratio of the number of neutrons to the number of protons is 2:1.
 

 55. 

Which of the following atoms has six valence electrons?
a.
magnesium (Mg)
c.
argon (Ar)
b.
silicon (Si)
d.
sulfur (S)
 

 56. 

When the reaction
mc056-1.jpg
is completely balanced using smallest whole numbers, the coefficient of H2O will be
a.
2
b.
4
c.
3
d.
1
 

 57. 

Which of the following is an example of a physical change?
a.
breaking glass
c.
lighting a match
b.
rusting of iron
d.
burning gasoline
 

 58. 

Which temperature is the same as -13 °C?
a.
747 K
b.
286 K
c.
260 K
d.
773 K
 

 59. 

Which is the correct name of the compound with the formula NH4NO2?
a.
ammonium nitrate
c.
ammonium nitrite
b.
ammonia nitrate
d.
ammonia nitrite
 

 60. 

The gram molecular mass of Ca3(PO4)2 is
a.
310 g
b.
246 g
c.
342 g
d.
279 g
 

 61. 

Given the balanced equation:
AgNO3 + NaCl mc061-1.jpg NaNO3 + AgCl
Which compound would precipitate out of the reaction?
a.
AgCl
c.
NaCl
b.
AgNO3
d.
NaNO3
 

 62. 

Which kind of bond is formed when two atoms share electrons to form a molecule?
a.
covalent
b.
electovalent
c.
ionic
d.
metallic
 

 63. 

Logan is studying a substance.  Which property of the substance is chemical?
a.
its melting point
c.
its temperature
b.
its density
d.
its flammability
 

 64. 

A red light is measured to have a wavelength of 6.71 x 10-7 m. Given the speed of light (3.00 x 108 m/s) and Planck’s constant (6.63 x 10-34 Js), calculate the energy of one photon of this light.
a.
2.96 x 10-19 J
c.
4.42 x 10-3 J
b.
1.48 x 10-18 J
d.
1.33 x 10-18 J
 

 65. 

According to the Arrhenius definition, a substance that is classified as an acid will always produce _______ in solution
a.
F-(aq)
b.
K+(aq)
c.
I-(aq)
d.
H+(aq)
 

 66. 

Sodium, mercury, argon and neon are used in the production of lamps. There are fewer safety guidelines regarding the handling of neon and argon than for mercury and sodium. Which of the following best describes the properties of elements in the same family as neon and argon?
a.
Solid at room temperature
c.
Mostly unreactive
b.
Gaseous at room temperature and highly reactive
d.
Solid at room temperature and mostly unreactive with strong acids
 

 67. 

Which atom contains exactly 15 protons?
a.
phosphorous-32
c.
oxygen-15
b.
nitrogen-15
d.
sulfur-32
 

 68. 

Which equation represents a neutralization reaction?
a.
H2SO4(aq) + CaCO3(aq) mc068-1.jpg CaSO4(aq) + H2O(l) +CO2(g)
b.
2 HCl(aq) + Zn(s) mc068-2.jpg ZnCl2(aq) + H2(g)
c.
HNO3(aq) + KOH(aq) mc068-3.jpg KNO3(aq) + H2O(l)
d.
CaO(s) + H2O(l) mc068-4.jpg Ca(OH)2(aq)
 

 69. 

As wavelength increases, what happens to Frequency and Energy?
a.
Both Increase
c.
Frequency decreases, Energy increases
b.
Frequency increases, Energy decreases
d.
Both Decrease
 

 70. 

A monochromatic beam of light has a frequency of 7.69 x 1014 Hz (hertz).  What is the energy of a photon of this light?
a.
2.59 x 10-40 J
c.
5.10 x 10-19 J
b.
6.92 x 10-31 J
d.
3.90 x 10-7 J
 

 71. 

Which of the following atoms has a smallest  atomic radius?
a.
Be
b.
Li
c.
F
d.
C
 

 72. 

When 20 mL of 1.0 M HCl is diluted to a total volume of 60 mL, the concentration of the resulting solution is
a.
0.25 M
b.
1.0 M
c.
0.50 M
d.
0.33 M
 

 73. 

The bonds present in nitrogen dioxide (NO2) are
a.
ionic
c.
covalent
b.
metallic
d.
van der Waals
 

 74. 

What is the mass number of an ion that has 83 protons, 80 electrons, and 126 neutrons?
a.
206
b.
289
c.
209
d.
83
 

 75. 

What is the formula mass of calcium nitrate, Ca(NO3)2?
a.
102 g
c.
70.0 g
b.
164 g
d.
150 g
 

 76. 

Which type of bond is formed by the transfer of electrons from one atom to another?
a.
a covalent bond
c.
a hydrogen bond
b.
a coordinate covalent bond
d.
an ionic bond
 



 
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