Deck 3: Stoichiometry: Mass, Formulas, and Reactions
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Deck 3: Stoichiometry: Mass, Formulas, and Reactions
1
A sample of water (H2O) contains 1.81 * 1024 molecules. How many moles of atoms are there in this sample?
A) 1.00
B) 2.00
C) 3.00
D) 6.00
E) 9.00
A) 1.00
B) 2.00
C) 3.00
D) 6.00
E) 9.00
9.00
2
In one analysis, the density of ozone in an air sample was found to be 5.00 *10-8 mol/L. What is the density in molecules per liter?
A) 8.30 *10-32
B) 3.01 * 1016
C) 1.81 *10-11
D) 3.01 *1011
E) 6.02 * 1023
A) 8.30 *10-32
B) 3.01 * 1016
C) 1.81 *10-11
D) 3.01 *1011
E) 6.02 * 1023
3.01 * 1016
3
A tiny speck (8.3*10-7 mol) of radioactive americium-241 is used in smoke detectors. How many atoms of americium-241 are there in one of these smoke detectors?
A) 5.0 * 1017
B) 1.2 * 1020
C) 2.9 * 1022
D) 6.0 * 1023
E) 8.3 * 107
A) 5.0 * 1017
B) 1.2 * 1020
C) 2.9 * 1022
D) 6.0 * 1023
E) 8.3 * 107
5.0 * 1017
4
A gallon of water has a mass of 3.79 kg. How many moles of water (18.02 g/mol) is this?
A) 0.210 mol
B) 210 mol
C) 68.3 mol
D) 68,300 mol
E) 386 mol
A) 0.210 mol
B) 210 mol
C) 68.3 mol
D) 68,300 mol
E) 386 mol
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5
A quart of water has a mass of 0.948 kg. How many moles of water (18.02 g/mol) is this?
A) 0.0526 mol
B) 52.6 mol
C) 17.1 mol
D) 17,100 mol
E) 171 mol
A) 0.0526 mol
B) 52.6 mol
C) 17.1 mol
D) 17,100 mol
E) 171 mol
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6
Which statement A-D regarding the terms mole and molar mass is not correct?
A) A mole is defined as the number of particles in exactly 12 g of carbon-12.
B) A mole of oxygen gas contains 6.022 * 1023 molecules.
C) Two moles of oxygen atoms can be obtained by decomposing one mole of carbon dioxide.
D) To obtain the molar mass in grams (g/mol) from the atomic mass in atomic mass units (u), multiply by 6.022 * 1023/mol and divide by 6.022*1023 u/g.
E) Statements A-D all are correct.
A) A mole is defined as the number of particles in exactly 12 g of carbon-12.
B) A mole of oxygen gas contains 6.022 * 1023 molecules.
C) Two moles of oxygen atoms can be obtained by decomposing one mole of carbon dioxide.
D) To obtain the molar mass in grams (g/mol) from the atomic mass in atomic mass units (u), multiply by 6.022 * 1023/mol and divide by 6.022*1023 u/g.
E) Statements A-D all are correct.
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7
Which statement about the following chemical reaction is not correct?
3H2 + N2 2NH3
A) For every nitrogen molecule consumed, two molecules of ammonia are produced.
B) For every two molecules of nitrogen consumed, three molecules of ammonia are produced.
C) For every three molecules of hydrogen consumed, two molecules of ammonia are produced.
D) For every two molecules of ammonia produced, three molecules of hydrogen are consumed.
E) One molecule of nitrogen reacts with three molecules of hydrogen.
3H2 + N2 2NH3
A) For every nitrogen molecule consumed, two molecules of ammonia are produced.
B) For every two molecules of nitrogen consumed, three molecules of ammonia are produced.
C) For every three molecules of hydrogen consumed, two molecules of ammonia are produced.
D) For every two molecules of ammonia produced, three molecules of hydrogen are consumed.
E) One molecule of nitrogen reacts with three molecules of hydrogen.
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8
Which of the following contains the largest number of atoms?
A) 1 mol water
B) 1 mol phosphorus trichloride
C) 1 mol dinitrogen pentoxide
D) 1 mol carbon dioxide
E) All of these contain the same number of atoms.
A) 1 mol water
B) 1 mol phosphorus trichloride
C) 1 mol dinitrogen pentoxide
D) 1 mol carbon dioxide
E) All of these contain the same number of atoms.
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9
In one analysis, 3.01 *1013 molecules of ozone were found in 1.00 mL of an air sample. How many moles of ozone is this?
A) 5.00 * 10-11 mol
B) 1.81 * 1037 mol
C) 1.81 *10-11 mol
D) 5.00 * 1037 mol
E) 6.02 *10-23 mol
A) 5.00 * 10-11 mol
B) 1.81 * 1037 mol
C) 1.81 *10-11 mol
D) 5.00 * 1037 mol
E) 6.02 *10-23 mol
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10
Which substance listed below contains the most oxygen atoms?
A) 1 mol of Al2O3
B) 1 mol of Fe2O3
C) 2 mol of N2O4
D) 2 mol of CO2
E) 2 mol of HNO3
A) 1 mol of Al2O3
B) 1 mol of Fe2O3
C) 2 mol of N2O4
D) 2 mol of CO2
E) 2 mol of HNO3
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11
Which statement about the following chemical reaction is not correct?
2H2 + O2 2H2O
A) For every oxygen molecule consumed, two water molecules are produced.
B) For every two hydrogen molecules consumed, two water molecules are produced.
C) Two hydrogen molecules react with one oxygen molecule.
D) Four hydrogen molecules react with oxygen to produce two water molecules.
E) Four hydrogen atoms combine with two oxygen atoms to produce two water molecules.
2H2 + O2 2H2O
A) For every oxygen molecule consumed, two water molecules are produced.
B) For every two hydrogen molecules consumed, two water molecules are produced.
C) Two hydrogen molecules react with one oxygen molecule.
D) Four hydrogen molecules react with oxygen to produce two water molecules.
E) Four hydrogen atoms combine with two oxygen atoms to produce two water molecules.
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12
The mass of 0.25 mol of some element is 8.0 g. What is the element?
A) O2
B) N2
C) Cl2
D) Br2
E) H2
A) O2
B) N2
C) Cl2
D) Br2
E) H2
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13
How many atoms of chlorine are there in 25.0 g of calcium chloride (CaCl2)?
A) 1.36 * 1023 atoms
B) 2.67 * 1024 atoms
C) 2.71 *1023 atoms
D) 1.95 * 1023 atoms
A) 1.36 * 1023 atoms
B) 2.67 * 1024 atoms
C) 2.71 *1023 atoms
D) 1.95 * 1023 atoms
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14
Which one of the following samples contains the fewest number of molecules? H is used as the symbol for hydrogen-1, and D is used as the symbol for hydrogen-2.
A) 42 g of D2O
B) 2 moles of H2O
C) 2 moles of D2O
D) 36 g of H2O
E) 39 g of D2O
A) 42 g of D2O
B) 2 moles of H2O
C) 2 moles of D2O
D) 36 g of H2O
E) 39 g of D2O
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15
Identify the correct statement regarding the mole.
A) A mole of oxygen gas contains 6.02 *1023 atoms.
B) A mole of chlorine gas contains 2 *6.02 * 1023 molecules.
C) A mole of carbon dioxide contains two moles of oxygen atoms.
D) A mole of ammonia gas (NH3) has a mass of 34.0 g.
E) A mole consists of the number of particles in exactly 12 g of naturally occurring carbon.
A) A mole of oxygen gas contains 6.02 *1023 atoms.
B) A mole of chlorine gas contains 2 *6.02 * 1023 molecules.
C) A mole of carbon dioxide contains two moles of oxygen atoms.
D) A mole of ammonia gas (NH3) has a mass of 34.0 g.
E) A mole consists of the number of particles in exactly 12 g of naturally occurring carbon.
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16
A particular manufacturer sells phosphoric acid capsules as a homeopathic remedy with a concentration specified as 23X. (23X means that when averaged over many capsules, the average mass of phosphoric acid in one capsule is 10-23 times the mass of the capsule. The rest is a carbohydrate filler.) If each capsule has a mass of 35 mg, approximately how many capsules would you have to take to expect to ingest at least one molecule of H3PO4 (98.0 g/mol)?
A) 1
B) 5
C) 50
D) 500
E) 5000
A) 1
B) 5
C) 50
D) 500
E) 5000
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17
How many gold atoms are there in a 1.00 kg bar of gold?
A) 3.06 *1024
B) 197 mol
C) 3.06 *1021
D) 5.08 *10-3 mol
E) 5.08 * 1018
A) 3.06 *1024
B) 197 mol
C) 3.06 *1021
D) 5.08 *10-3 mol
E) 5.08 * 1018
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18
One mole is defined as __________
A) the number of particles equal to the number of atoms in exactly 12 g of carbon-12.
B) the number of particles equal to the number of atoms in exactly 16 g of oxygen-16.
C) exactly 6.02 *1022 particles.
D) the number of particles equal to the number of atoms in exactly 1 g of hydrogen-1.
E) the number of particles equal to the number of atoms in exactly 1 kg of carbon in a vault at the National Bureau of Standards.
A) the number of particles equal to the number of atoms in exactly 12 g of carbon-12.
B) the number of particles equal to the number of atoms in exactly 16 g of oxygen-16.
C) exactly 6.02 *1022 particles.
D) the number of particles equal to the number of atoms in exactly 1 g of hydrogen-1.
E) the number of particles equal to the number of atoms in exactly 1 kg of carbon in a vault at the National Bureau of Standards.
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19
How many moles of ammonia are there in a 346 g sample of pure NH3 (17.03 g/mol)?
A) 0.0496 mol
B) 20.3 mol
C) 24.7 mol
D) 5,930 mol
E) 3.46 mol
A) 0.0496 mol
B) 20.3 mol
C) 24.7 mol
D) 5,930 mol
E) 3.46 mol
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20
A tiny speck (2.0 * 10-4 g) of radioactive americium-241 (241.06 g/mol) is used in smoke detectors. How many atoms of americium-241 are there in one of these smoke detectors?
A) 5.0 * 1017 atoms
B) 1.2 * 1020 atoms
C) 2.9 * 1022 atoms
D) 6.0 * 1023 atoms
E) 8.3 * 107 atoms
A) 5.0 * 1017 atoms
B) 1.2 * 1020 atoms
C) 2.9 * 1022 atoms
D) 6.0 * 1023 atoms
E) 8.3 * 107 atoms
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21
Platinum (195.078 g/mol) once sold for $560/oz. One ounce is equal to 28.35 g. How many platinum atoms could you buy with a penny ($0.01)?
A) 5.0*1020 atoms
B) 2.6 * 106 atoms
C) 6.5 *1019 atoms
D) 1.6 *1018 atoms
E) 5.1*1018 atoms
A) 5.0*1020 atoms
B) 2.6 * 106 atoms
C) 6.5 *1019 atoms
D) 1.6 *1018 atoms
E) 5.1*1018 atoms
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22
Hydrogen peroxide decomposes to produce water and oxygen. Which relationship regarding the quantities of reactants and products associated with this reaction is not correct?
2H2O2 2H2O + O2
A) 68.0 g 36.0 g + 32.0 g
B) 34.0 g 18.0 g + 16.0 g
C) 90.5 g 47.9 g + 42.6 g
D) 2x g 2x g + x g
E) y(34.0 g) y(18.0 g) + (32 g)(y/2)
2H2O2 2H2O + O2
A) 68.0 g 36.0 g + 32.0 g
B) 34.0 g 18.0 g + 16.0 g
C) 90.5 g 47.9 g + 42.6 g
D) 2x g 2x g + x g
E) y(34.0 g) y(18.0 g) + (32 g)(y/2)
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23
Identify the list below that has these oxides arranged in order of increasing molar mass. Save time by looking at the periodic table and thinking, without actually doing any calculations.
A) SO2 < NO2 < CO2 < NO < CO
B) CO < NO < CO2 < NO2 < SO2
C) CO < CO2 < NO < NO2 < SO2
D) NO < NO2 < CO < CO2 < SO2
E) CO < NO < NO2 < CO2 < SO2
A) SO2 < NO2 < CO2 < NO < CO
B) CO < NO < CO2 < NO2 < SO2
C) CO < CO2 < NO < NO2 < SO2
D) NO < NO2 < CO < CO2 < SO2
E) CO < NO < NO2 < CO2 < SO2
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24
Fuming sulfuric acid is obtained by the addition of SO3 to concentrated H2SO4. The fumes result from the reaction of SO3 gas with water vapor. What is the product when one molecule of SO3 reacts with one molecule of water?
A) two molecules of sulfurous acid
B) one sulfate ion
C) two sulfite ions
D) one molecule of sulfuric acid
E) two molecules of sulfuric acid
A) two molecules of sulfurous acid
B) one sulfate ion
C) two sulfite ions
D) one molecule of sulfuric acid
E) two molecules of sulfuric acid
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25
In the summer of 2010, platinum (195.078 g/mol) sold for $1,500/oz. One ounce is equal to 28.35 g. How many platinum atoms could you buy with a penny ($0.01)?
A) 5.0 * 1020 atoms
B) 2.6 F* 106 atoms
C) 6.5 *1019 atoms
D) 1.5 *1018 atoms
E) 5.8 * 1017 atoms
A) 5.0 * 1020 atoms
B) 2.6 F* 106 atoms
C) 6.5 *1019 atoms
D) 1.5 *1018 atoms
E) 5.8 * 1017 atoms
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26
How many hydrogen atoms are there in a 346 g sample of pure ammonia (NH3)?
A) 3.67 * 1025 atoms
B) 1.22 * 1025 atoms
C) 60.9 atoms
D) 20.3 atoms
E) 4.89 * 1025 atoms
A) 3.67 * 1025 atoms
B) 1.22 * 1025 atoms
C) 60.9 atoms
D) 20.3 atoms
E) 4.89 * 1025 atoms
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27
As a purchasing agent for a pharmaceutical company, how much chlorine, Cl2, do you need to order to react completely with 500 kg of platinum, Pt, to make cisplatin, PtCl2(NH3)2?
A) 182 kg
B) 500 kg
C) 2,564 kg
D) 364 kg
E) 91 kg
A) 182 kg
B) 500 kg
C) 2,564 kg
D) 364 kg
E) 91 kg
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28
How many oxygen atoms are there in 27.0 g of sodium sulfate (Na2SO4)?
A) 1.15 * 1023 atoms
B) 4.58 *1023 atoms
C) 5.73 * 1023 atoms
D) 2.41 * 1024 atoms
E) 6.88 * 1023 atoms
A) 1.15 * 1023 atoms
B) 4.58 *1023 atoms
C) 5.73 * 1023 atoms
D) 2.41 * 1024 atoms
E) 6.88 * 1023 atoms
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29
Which statement about the following chemical reaction is not correct?
2H2 + O2 2H2O
A) It requires 1 mol of dioxygen to produce 2 mol of water.
B) It requires 2 mol of dihydrogen to produce 2 mol of water.
C) One mole of dioxygen reacts with 2 mol of dihydrogen.
D) Two moles of dioxygen react with dihydrogen to produce 2 mol of water.
E) Four moles of hydrogen atoms combine with 2 mol of oxygen atoms to produce 2 mol of water.
2H2 + O2 2H2O
A) It requires 1 mol of dioxygen to produce 2 mol of water.
B) It requires 2 mol of dihydrogen to produce 2 mol of water.
C) One mole of dioxygen reacts with 2 mol of dihydrogen.
D) Two moles of dioxygen react with dihydrogen to produce 2 mol of water.
E) Four moles of hydrogen atoms combine with 2 mol of oxygen atoms to produce 2 mol of water.
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30
What is the molar mass of phosphorus pentachloride (PCl5)?
A) 177.25 g/mol
B) 190.30 g/mol
C) 208.22 g/mol
D) 172.75 g/mol
E) 202.82 g/mol
A) 177.25 g/mol
B) 190.30 g/mol
C) 208.22 g/mol
D) 172.75 g/mol
E) 202.82 g/mol
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31
A balanced chemical reaction equation is to a reactant as __________
A) a map is to a gas station.
B) a child is to a parent.
C) a recipe is to an ingredient.
D) a good job is to a college degree.
E) a paycheck is to a job.
A) a map is to a gas station.
B) a child is to a parent.
C) a recipe is to an ingredient.
D) a good job is to a college degree.
E) a paycheck is to a job.
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32
Which statement about a balanced chemical reaction equation is always correct?
A) The total number of moles of the products equals the total number of moles of the reactants.
B) The number of atoms of each kind is the same for the products as for the reactants.
C) The sum of the stoichiometric coefficients for the products equals the sum of the stoichiometric coefficients for the reactants.
D) The sum of the masses of gaseous reactants equals the sum of the masses of gaseous products.
E) The sum of the masses of solid products equals the sum of the masses of solid reactants.
A) The total number of moles of the products equals the total number of moles of the reactants.
B) The number of atoms of each kind is the same for the products as for the reactants.
C) The sum of the stoichiometric coefficients for the products equals the sum of the stoichiometric coefficients for the reactants.
D) The sum of the masses of gaseous reactants equals the sum of the masses of gaseous products.
E) The sum of the masses of solid products equals the sum of the masses of solid reactants.
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33
Air bags in cars inflate when an electrical spark activates sodium azide (NaN3) so that it decomposes to sodium metal, Na, and nitrogen gas, N2. In the balanced reaction equation, how many moles of nitrogen gas are formed for each mole of sodium azide?
A) 1
B) 1.5
C) 2
D) 3
E) 2.5
A) 1
B) 1.5
C) 2
D) 3
E) 2.5
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34
Fe2O3(s) and powdered aluminum can react with great output of heat to form molten iron and Al2O3. When this reaction equation is balanced, what are the stoichiometric coefficients in the following order: Fe2O3, Al, Fe, Al2O3?
A) 1, 1, 1, 1
B) 2, 2, 2, 2
C) 1, 2, 2, 1
D) 2, 1, 1, 2
E) 1, 1, 2, 2
A) 1, 1, 1, 1
B) 2, 2, 2, 2
C) 1, 2, 2, 1
D) 2, 1, 1, 2
E) 1, 1, 2, 2
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35
What is the molar mass of sulfuric acid (H2SO4)?
A) 49.0 g/mol
B) 24.5 g/mol
C) 101 g/mol
D) 98.1 g/mol
E) 97.0 g/mol
A) 49.0 g/mol
B) 24.5 g/mol
C) 101 g/mol
D) 98.1 g/mol
E) 97.0 g/mol
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36
As a purchasing agent for a pharmaceutical company, you need to determine the amount of platinum that is needed per kilogram of cisplatin, which is an anticancer drug. The chemical formula for cisplatin is PtCl2(NH3)2, and its molar mass is 301g/mol.
A) 324 g
B) 648 g
C) 64.8 g
D) 32.4 g
E) 200 g
A) 324 g
B) 648 g
C) 64.8 g
D) 32.4 g
E) 200 g
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37
How many mL of C16H34 are needed to react with 0.050 mol O2, assuming complete combustion occurs? The density of C16H34 is 0.80 g/mL.
A) 0.99 mL
B) 0.37 mL
C) 0.58 mL
D) 0.46 mL
E) 0.89 mL
A) 0.99 mL
B) 0.37 mL
C) 0.58 mL
D) 0.46 mL
E) 0.89 mL
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38
Hydrogen peroxide decomposes to produce water and oxygen. Which relationship regarding the quantities of reactants and products associated with this reaction is not correct?
2H2O2 2H2O + O2
A) 2 molecules 2 molecules + 1 molecule
B) 2 mol 2 mol + 1 mol
C) 68.0 g 36.0 g + 32.0 g
D) 2x mo 2x mol + x mol
E) y(34.0 g) y(18.0 g) + y(32 g)
2H2O2 2H2O + O2
A) 2 molecules 2 molecules + 1 molecule
B) 2 mol 2 mol + 1 mol
C) 68.0 g 36.0 g + 32.0 g
D) 2x mo 2x mol + x mol
E) y(34.0 g) y(18.0 g) + y(32 g)
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39
How many hydrogen atoms are there in 36.0 g of water (H2O)?
A) 2
B) 4
C) 6.02 *1023
D) 1.20 *1024
E) 2.41 *1024
A) 2
B) 4
C) 6.02 *1023
D) 1.20 *1024
E) 2.41 *1024
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40
Which statement about the following chemical reaction is not correct?
3H2 + N2 2NH3
A) For every mole of nitrogen consumed, two moles of ammonia are produced.
B) For every two moles of nitrogen consumed, three moles of ammonia are produced.
C) For every three moles of hydrogen consumed, two moles of ammonia are produced.
D) For every two moles of ammonia produced, three moles of hydrogen are consumed.
E) Three moles of hydrogen will react with one mole of nitrogen to produce ammonia.
3H2 + N2 2NH3
A) For every mole of nitrogen consumed, two moles of ammonia are produced.
B) For every two moles of nitrogen consumed, three moles of ammonia are produced.
C) For every three moles of hydrogen consumed, two moles of ammonia are produced.
D) For every two moles of ammonia produced, three moles of hydrogen are consumed.
E) Three moles of hydrogen will react with one mole of nitrogen to produce ammonia.
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41
Which statement, A-D, regarding photosynthesis is not correct?
In the process of photosynthesis __________
A) light energy is converted into carbon-based fuels.
B) oxygen is produced.
C) atmospheric carbon dioxide is consumed.
D) the sugar glucose is produced.
E) A-D are all correct.
In the process of photosynthesis __________
A) light energy is converted into carbon-based fuels.
B) oxygen is produced.
C) atmospheric carbon dioxide is consumed.
D) the sugar glucose is produced.
E) A-D are all correct.
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42
A fuel cell works on the same principle as a battery but is continually fed with fuel. In one fuel cell, methanol (CH3OH) enters on one side of the unit, and air enters on the other side. Both circulate past electrodes, and a chemical reaction occurs that produces electricity, plus carbon dioxide and water as byproducts. Which balanced chemical reaction equation best represents the reaction that occurs in this fuel cell?
A) CH3OH CO2 + H2O
B) CH3OH CH3 + OH
C) CH3OH CH2 + H2O
D) CH3OH + O2 CO2 + H2O
E) 2CH3OH + 3O2 2CO2 + 4H2O
A) CH3OH CO2 + H2O
B) CH3OH CH3 + OH
C) CH3OH CH2 + H2O
D) CH3OH + O2 CO2 + H2O
E) 2CH3OH + 3O2 2CO2 + 4H2O
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43
One form of elemental sulfur is a ring of eight sulfur atoms. How many moles of molecular oxygen are consumed when one mole of this allotrope burns to make sulfur trioxide?
A) 3
B) 6
C) 12
D) 18
E) 24
A) 3
B) 6
C) 12
D) 18
E) 24
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44
Ozone (O3) reacts with iodide (I-) and water to form iodine (I2), hydroxide (OH-), and oxygen (O2). Balance the following reaction equation and report the sum of the stoichiometric coefficients.
O3 + I- + H2O I2 + OH- + O2
A) 10
B) 6
C) 8
D) 12
E) 14
O3 + I- + H2O I2 + OH- + O2
A) 10
B) 6
C) 8
D) 12
E) 14
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45
The combustion of butane (C4H10) forms carbon dioxide and water. What is the stoichiometric coefficient for oxygen in the balanced equation when 1 mol of butane undergoes combustion?
A) 9
B) 13
C)
D)
E) 5
A) 9
B) 13
C)
D)
E) 5
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46
Identify the set of stoichiometric coefficients that balances the reaction equation for the combustion of octane.
C8H18 + O2 CO2 + H2O
A) 1, 25, 8, 9
B) 1, 17, 8, 9
C) 2, 34, 16, 18
D) 2, 25, 16, 18
E) None of the above coefficients balance the reaction equation.
C8H18 + O2 CO2 + H2O
A) 1, 25, 8, 9
B) 1, 17, 8, 9
C) 2, 34, 16, 18
D) 2, 25, 16, 18
E) None of the above coefficients balance the reaction equation.
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47
In a demonstration of the complete combustion of propane (C3H8) with oxygen (O2), several balloons were prepared with various proportions by volume of propane and oxygen. The loudest explosion occurred for the balloon with the correct stoichiometric proportions of the gases. Which balloon had the loudest explosion? Note that the number of molecules of a gas is proportional to the volume of the gas at a given pressure and temperature.
A) 1 portion propane to 1 portion oxygen
B) 1 portion propane to 3 portions oxygen
C) 1 portion propane to 4 portions oxygen
D) 1 portion propane to 5 portions oxygen
E) 2 portions propane to 3 portions oxygen
A) 1 portion propane to 1 portion oxygen
B) 1 portion propane to 3 portions oxygen
C) 1 portion propane to 4 portions oxygen
D) 1 portion propane to 5 portions oxygen
E) 2 portions propane to 3 portions oxygen
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48
Glucose (C6H12O6) is oxidized by molecular oxygen to carbon dioxide and water. How many O2 molecules are needed for each molecule of glucose that is oxidized?
A) 1
B) 2
C) 6
D) 12
E) 18
A) 1
B) 2
C) 6
D) 12
E) 18
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49
The average adult exhales about 1.0 kg of carbon dioxide each day. How much oxygen is needed in metabolizing glucose (C6H12O6, 180 g/mol) to make that much carbon dioxide?
A) 180 g
B) 1800 g
C) 360 g
D) 730 g
E) 1500 g
A) 180 g
B) 1800 g
C) 360 g
D) 730 g
E) 1500 g
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50
Sulfur dioxide from coal-fired power plants combines with water in the atmosphere to produce acid rain. What is the product when one molecule of SO2 reacts with one molecule of water?
A) two molecules of sulfurous acid
B) one sulfate ion
C) two sulfite ions
D) one molecule of sulfuric acid
E) one molecule of sulfurous acid
A) two molecules of sulfurous acid
B) one sulfate ion
C) two sulfite ions
D) one molecule of sulfuric acid
E) one molecule of sulfurous acid
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51
The combustion of fossil fuels is the main anthropogenic source of carbon dioxide in the atmosphere. During the combustion of gasoline in automobile engines, oxygen reacts with hydrocarbons to produce carbon dioxide and water. Assume gasoline is octane (C8H18). Write the balanced reaction equation, and report the sum of the stoichiometric coefficients written as integers.
A) 55
B) 29
C) 31
D) 30
E) 61
A) 55
B) 29
C) 31
D) 30
E) 61
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52
The acid-base reaction between phosphoric acid, H3PO4, and calcium hydroxide, Ca(OH)2, yields water and calcium phosphate. For each mole of calcium phosphate produced by this reaction, how many moles of water are produced?
A) 1
B) 2
C) 3
D) 4
E) 6
A) 1
B) 2
C) 3
D) 4
E) 6
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53
Burning coal that contains sulfur releases sulfur dioxide gas into the atmosphere where it combines with water to form sulfurous and sulfuric acid, thereby producing acid rain. Assume sulfur in coal is in the form of pyrite (FeS2(s)), which reacts with molecular oxygen to produce Fe2O3(s) and SO2(g). Write the balanced equation for this reaction and report the sum of the stoichiometric coefficients, written as integers.
A) 16
B) 14
C) 23
D) 25
E) 18
A) 16
B) 14
C) 23
D) 25
E) 18
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54
Baking soda (NaHCO3, 84.0 g/mol) requires acids from other ingredients to generate the carbon dioxide needed to make bread rise. The following equation describes this reaction, where HB is some unspecified acid. If 20.4 g of baking soda are used in a recipe and enough acid is present for a complete reaction, how many moles of carbon dioxide are generated?
HB + NaHCO3 H2O + CO2 + NaB
A) 0.464 mol
B) 0.334 mol
C) 0.243 mol
D) 0.204 mol
E) 0.232 mol
HB + NaHCO3 H2O + CO2 + NaB
A) 0.464 mol
B) 0.334 mol
C) 0.243 mol
D) 0.204 mol
E) 0.232 mol
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55
Diesel fuel for automobiles and trucks is a mixture of hydrocarbons that can be modeled by C16H34. Write the balanced reaction equation for the combustion of C16H34, and report the sum of the stoichiometric coefficients.
A) 4
B) 120
C) 76
D) 83
E) 117
A) 4
B) 120
C) 76
D) 83
E) 117
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56
What are the stoichiometric coefficients for oxygen and water, respectively, in the balanced chemical reaction equation representing the combustion of butane (C4H10)?
A) 4, 5
B) 9, 5
C) 13, 10
D)
, 10
E) 13, 5
A) 4, 5
B) 9, 5
C) 13, 10
D)
, 10
E) 13, 5
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57
The combustion of ethanol (CH3CH2OH, 46.1 g/mol) results in the formation of water and carbon dioxide. How many grams of carbon dioxide are produced when 46.1 g of ethanol burns?
A) 88.0 g
B) 44.0 g
C) 176 g
D) 22.0 g
E) 11.0 g
A) 88.0 g
B) 44.0 g
C) 176 g
D) 22.0 g
E) 11.0 g
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58
If the combustion of fossil fuels adds about 5 *1012 kg of carbon to the atmosphere as CO2 each year, how much oxygen is required to produce this amount of carbon dioxide?
A) about 1.3 *1012 kg
B) about 1.3*1013 kg
C) about 2.6 *1012 kg
D) about 2.6*1013 kg
E) about 6.7 * 1012 kg
A) about 1.3 *1012 kg
B) about 1.3*1013 kg
C) about 2.6 *1012 kg
D) about 2.6*1013 kg
E) about 6.7 * 1012 kg
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59
Which statement, A-D, regarding the carbon cycle is not correct?
A) Petroleum, coal, and other carbon sediments are produced.
B) Respiration produces atmospheric carbon dioxide.
C) Water is a reactant in photosynthesis.
D) Forest fires are part of the carbon cycle.
E) A-D are all correct.
A) Petroleum, coal, and other carbon sediments are produced.
B) Respiration produces atmospheric carbon dioxide.
C) Water is a reactant in photosynthesis.
D) Forest fires are part of the carbon cycle.
E) A-D are all correct.
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60
Copper sulfate is a blue solid that is used to control algae growth. Solutions of copper sulfate that come in contact with the surface of galvanized (zinc-plated) steel pails undergo the following reaction that forms copper metal on the zinc surface. How many grams of zinc would react with 454 g (1 lb) of copper sulfate (160 g/mol)?
CuSO4(aq) + Zn(s) Cu(s) + ZnSO4(aq)
A) 467 g
B) 186 g
C) 93 g
D) 234 g
E) 454 g
CuSO4(aq) + Zn(s) Cu(s) + ZnSO4(aq)
A) 467 g
B) 186 g
C) 93 g
D) 234 g
E) 454 g
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61
How much CO2 is produced by a car driven 20,000 mi in one year?
Assume the following:
• A car gets 20 mi/4.0 L of gasoline.
• Gasoline has the chemical formula of octane: C8H18.
• One liter of gasoline has a mass of 0.8 kg.
• Gasoline is completely burned to carbon dioxide and water.
A) 1,500 kg
B) 9,900 kg
C) 15,000 kg
D) 20,000 kg
E) 4,900 kg
Assume the following:
• A car gets 20 mi/4.0 L of gasoline.
• Gasoline has the chemical formula of octane: C8H18.
• One liter of gasoline has a mass of 0.8 kg.
• Gasoline is completely burned to carbon dioxide and water.
A) 1,500 kg
B) 9,900 kg
C) 15,000 kg
D) 20,000 kg
E) 4,900 kg
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62
Which molecules shown below have the same empirical formula? 
A) II, III, IV are the same.
B) Only II and III are the same.
C) Only I and III are the same.
D) I, II, and III are the same.
E) I & III are the same, and II & IV are the same.

A) II, III, IV are the same.
B) Only II and III are the same.
C) Only I and III are the same.
D) I, II, and III are the same.
E) I & III are the same, and II & IV are the same.
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63
The space shuttle uses liquid hydrogen and liquid oxygen to produce thrust for liftoff in the following reaction. If the liquid oxygen supply is set to provide 420 kg/s during a launch, what does the rate of liquid hydrogen supply need to be in kilograms per second?
2H2(l) + O2(l) 2H2O(g)
A) 840 kg/s
B) 210 kg/s
C) 106 kg/s
D) 52.9 kg/s
E) 63.4 kg/s
2H2(l) + O2(l) 2H2O(g)
A) 840 kg/s
B) 210 kg/s
C) 106 kg/s
D) 52.9 kg/s
E) 63.4 kg/s
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64
The average adult exhales about 1.0 kg of carbon dioxide each day. How much glucose (C6H12O6, 180 g/mol) is consumed to make that much carbon dioxide?
A) 3.8 kg
B) 4.1 kg
C) 0.43 kg
D) 0.68 kg
E) 0.18 kg
A) 3.8 kg
B) 4.1 kg
C) 0.43 kg
D) 0.68 kg
E) 0.18 kg
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65
Elemental analysis of the soot produced by a candle flame shows that it is 7.75% H and 92.3% C by mass. What is the empirical formula of this hydrocarbon?
A) CH
B) CH2
C) C2H
D) CH3
E) C2H3
A) CH
B) CH2
C) C2H
D) CH3
E) C2H3
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66
Even though lead is toxic, lead compounds were used in ancient times as white pigments in cosmetics. What is the percentage of lead by mass in lead(IV) carbonate, Pb(CO3)2?
A) 32.7%
B) 20.7%
C) 63.3%
D) 77.5%
E) 81.4%
A) 32.7%
B) 20.7%
C) 63.3%
D) 77.5%
E) 81.4%
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67
A compound known to contain platinum, nitrogen, and hydrogen was analyzed and found to contain 74.1% Pt and 21.3% N; the remainder was hydrogen. What is the empirical formula for the compound?
A) Pt(NH3)4
B) Pt(NH3)3
C) Pt2(NH3)2
D) Pt(NH4)2
E) Pt(NH3)6
A) Pt(NH3)4
B) Pt(NH3)3
C) Pt2(NH3)2
D) Pt(NH4)2
E) Pt(NH3)6
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68
Copper was the first metal to be produced from its ore because it is the easiest to smelt, that is, to refine by heating in the presence of carbon (hence the early occurrence of the Bronze Age). The ore was likely malachite [Cu2(OH)2CO3]. What is the mass percent of copper in malachite?
A) 28.7%
B) 45.2%
C) 57.5%
D) 40.3%
E) 74.6%
A) 28.7%
B) 45.2%
C) 57.5%
D) 40.3%
E) 74.6%
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69
Metallic copper can be obtained from the mineral chalcocite (Cu2S). What is the mass percent of copper in chalcocite?
A) 79.85%
B) 66.46%
C) 20.15%
D) 33.54%
E) 57.47%
A) 79.85%
B) 66.46%
C) 20.15%
D) 33.54%
E) 57.47%
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70
Which molecules shown below have the same mass percent composition? 
A) II, III, IV are the same.
B) Only II and III are the same.
C) Only I and III are the same.
D) I, II, and III are the same.
E) I & III are the same, and II & IV are the same.

A) II, III, IV are the same.
B) Only II and III are the same.
C) Only I and III are the same.
D) I, II, and III are the same.
E) I & III are the same, and II & IV are the same.
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71
Elemental analysis of the soot produced by a candle flame shows that it is 14.3% H and 85.7% C by mass. What is the empirical formula of this hydrocarbon?
A) CH
B) CH2
C) C2H
D) CH3
E) C2H3
A) CH
B) CH2
C) C2H
D) CH3
E) C2H3
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72
Hydrogen peroxide (H2O2) decomposes catalytically in the presence of metal ions and enzymes called peroxidases. You may have noticed this reaction occurring if you use a drugstore solution of hydrogen peroxide as a mouthwash or antiseptic. If a 250 mL bottle of hydrogen peroxide solution containing 3.0% H2O2 (by mass) completely decomposes, how many liters of oxygen gas would it generate? Assume that 1 mol of gas occupies a volume of 22.4 L and that the density of the solution is 1.0 g/mL. The reaction is
2H2O2(aq) 2H2O(l) + O2(g)
A) 2.5 L
B) 4.9 L
C) 9.9 L
D) 7.4 L
E) 0.22 L
2H2O2(aq) 2H2O(l) + O2(g)
A) 2.5 L
B) 4.9 L
C) 9.9 L
D) 7.4 L
E) 0.22 L
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73
Arizona was the site of a 400,000-acre wildfire in June 2002. How much carbon dioxide was produced by this fire? Assume that the density of carbon on the acreage was 10 kg/m2 and that 50% of the biomass burned (10,000 m2 = 2.47 acre)
A) 3 *1010 kg
B) 3 * 106 kg
C) 3 *1030 kg
D) 3 * 109 kg
E) 3 *1013 kg
A) 3 *1010 kg
B) 3 * 106 kg
C) 3 *1030 kg
D) 3 * 109 kg
E) 3 *1013 kg
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74
An intermetallic titanium compound is used for medical implants and high quality jewelry. The composition of this compound is 70.68% titanium, 19.92% aluminum, and 9.400% vanadium. The molar masses of these elements are 47.88, 26.98, and 50.94 g/mol, respectively. What is the empirical formula of this compound?
A) Ti4AlV
B) Ti6Al2V
C) Ti6Al4V
D) Ti8Al4V
E) Ti10Al5V2
A) Ti4AlV
B) Ti6Al2V
C) Ti6Al4V
D) Ti8Al4V
E) Ti10Al5V2
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75
An iron ore, magnetite, contains only iron and oxygen. In refining 100.0 g of the ore, 72.35 g of iron are obtained. What is the empirical formula of the ore?
A) Fe2O3
B) FeO2
C) Fe2O5
D) Fe3O4
E) FeO
A) Fe2O3
B) FeO2
C) Fe2O5
D) Fe3O4
E) FeO
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76
Baking ammonia or ammonium bicarbonate (NH4HCO3, 79.1 g/mol) is a leavening agent used in some older recipes. As it is heated, it breaks down into three gases: ammonia, water, and carbon dioxide. For each 20 g of baking ammonia heated (about 4 tsp), how many grams of carbon dioxide are produced?
A) 15 g
B) 7.5 g
C) 11 g
D) 22 g
E) 20 g
A) 15 g
B) 7.5 g
C) 11 g
D) 22 g
E) 20 g
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77
The most abundant metal in Earth's crust is aluminum, found mostly in the form of clays. There are no economical routes for extracting aluminum from clay. However, bauxite ore, impure hydrated aluminum oxide, is found in hot humid regions, such as Australia, Guinea, and Brazil, and it can be purified and refined to make the metal. After the first purification step, hydrated aluminum oxide (Al2O3 . xH2O) is obtained. When 100.0 g of this solid were heated, and the water driven off, 65.36 g of Al2O3 remained. How many water molecules (x in the molecular formula) were there in the hydrate?
A) 1
B) 2
C) 3
D) 4
E) 5
A) 1
B) 2
C) 3
D) 4
E) 5
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78
One form of asbestos called chrysotile is considered to be a human carcinogen. Mass analysis shows that the composition of chrysotile is 26.3% Mg, 20.2% Si, 1.45% H, and the remainder of the mass is oxygen. Determine the empirical formula of chrysotile.
A) MgSiHO3
B) Mg2Si2H2O5
C) Mg3Si2H4O6
D) Mg3Si2H4O9
E) Mg4Si3H5O9
A) MgSiHO3
B) Mg2Si2H2O5
C) Mg3Si2H4O6
D) Mg3Si2H4O9
E) Mg4Si3H5O9
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79
Water can be separated into its elements according to the following equation by electrolysis. If 20.0 g of water is decomposed by this method, how much oxygen gas is produced?
2H2O (l) 2H2(g) + O2(g)
A) 17.8 g
B) 8.9 g
C) 35.6 g
D) 16.0 g
E) 10.0 g
2H2O (l) 2H2(g) + O2(g)
A) 17.8 g
B) 8.9 g
C) 35.6 g
D) 16.0 g
E) 10.0 g
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80
What mass of phosphoric acid (H3PO4, 98.0 g/mol) is produced from the reaction of 10.0 g of P4O10 (284 g/mol) with excess water?
A) 10.9 g
B) 40.0 g
C) 10.0 g
D) 13.8 g
E) 2.50 g
A) 10.9 g
B) 40.0 g
C) 10.0 g
D) 13.8 g
E) 2.50 g
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