Deck 7: Chemical Formula Relationships
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Deck 7: Chemical Formula Relationships
1
How many atoms are in 0.188 mol Na?
A)3.12 * 10-25
B)8.84* 10-24
C)1.13 * 1023
D)6.02 *1023
E)3.20 * 1024
A)3.12 * 10-25
B)8.84* 10-24
C)1.13 * 1023
D)6.02 *1023
E)3.20 * 1024
1.13 * 1023
2
Calculate the molar mass of ammonium sulfide.
A)68.15 g/mol
B)82.16 g/mol
C)49.10 g/mol
D)50.11 g/mol
E)66.14 g/mol
A)68.15 g/mol
B)82.16 g/mol
C)49.10 g/mol
D)50.11 g/mol
E)66.14 g/mol
68.15 g/mol
3
Calculate the formula mass of magnesium phosphate.
A)119.28 u
B)143.59 u
C)214.25 u
D)262.87 u
E)333.53 u
A)119.28 u
B)143.59 u
C)214.25 u
D)262.87 u
E)333.53 u
262.87 u
4
Which of the following statements is/are correct?
(i)A mole of sodium atoms (atomic mass = 23.0 u)contains fewer atoms than a mole of potassium atoms (atomic mass = 39.1 u)
(ii)A mole of sodium atoms (atomic mass = 23.0 u)contains more atoms than a mole of potassium atoms (atomic mass = 39.1 u)
(iii)In effect,the word mole represents the number 6.02 * 1023
(iv)One mole of a substance contains as many particles as there are atoms in 12 grams of carbon-12
(v)One mole of molecular nitrogen contains as many molecules as 24.0 u of carbon-12
A)i and iii
B)ii and iii
C)i and iv
D)iii and iv
E)ii,iii,iv,and v
(i)A mole of sodium atoms (atomic mass = 23.0 u)contains fewer atoms than a mole of potassium atoms (atomic mass = 39.1 u)
(ii)A mole of sodium atoms (atomic mass = 23.0 u)contains more atoms than a mole of potassium atoms (atomic mass = 39.1 u)
(iii)In effect,the word mole represents the number 6.02 * 1023
(iv)One mole of a substance contains as many particles as there are atoms in 12 grams of carbon-12
(v)One mole of molecular nitrogen contains as many molecules as 24.0 u of carbon-12
A)i and iii
B)ii and iii
C)i and iv
D)iii and iv
E)ii,iii,iv,and v
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5
The following two containers are found on a stock room counter.
How many atoms of nitrogen are in a formula unit of each from left to right,respectively?
A)1 nitrogen atom,1 nitrogen atom
B)1 nitrogen atom,2 nitrogen atoms
C)2 nitrogen atoms,1 nitrogen atoms
D)2 nitrogen atoms,2 nitrogen atoms
E)3 nitrogen atoms,6 nitrogen atoms

A)1 nitrogen atom,1 nitrogen atom
B)1 nitrogen atom,2 nitrogen atoms
C)2 nitrogen atoms,1 nitrogen atoms
D)2 nitrogen atoms,2 nitrogen atoms
E)3 nitrogen atoms,6 nitrogen atoms
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6
Calculate the formula mass of aluminum carbonate.
A)87.0 u
B)114.0 u
C)147.0 u
D)201.0 u
E)234.0 u
A)87.0 u
B)114.0 u
C)147.0 u
D)201.0 u
E)234.0 u
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7
Consider the following molecule.The identity of the atoms are shown.
What is the molar mass of this substance?
A)22.00 g/mol
B)56.02 g/mol
C)28.01 g/mol
D)76.01 g/mol
E)44.01 g/mol

A)22.00 g/mol
B)56.02 g/mol
C)28.01 g/mol
D)76.01 g/mol
E)44.01 g/mol
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8
Which of the following statements is incorrect?
A)Molecular mass is expressed in atomic mass units
B)Formula mass compares the mass of one formula unit of a substance to the mass of one atom of carbon-12
C)Atomic mass has units of grams per atom
D)Both molecular mass and formula mass use carbon-12 as a reference standard
E)Sodium chloride,an ionic compound,is said to have a formula weight,but not a molecular weight
A)Molecular mass is expressed in atomic mass units
B)Formula mass compares the mass of one formula unit of a substance to the mass of one atom of carbon-12
C)Atomic mass has units of grams per atom
D)Both molecular mass and formula mass use carbon-12 as a reference standard
E)Sodium chloride,an ionic compound,is said to have a formula weight,but not a molecular weight
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9
Which off the following provides the conversion factor to convert 10.7 g of sulfur dioxide to the corresponding number of moles of sulfur dioxide?
A)molar mass
B)molecular mass
C)formula mass
D)Avogadro's number
E)either a or c
A)molar mass
B)molecular mass
C)formula mass
D)Avogadro's number
E)either a or c
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10
Calculate the molar mass of molecular iodine.
A)126.9 g/mol
B)253.8 g/mol
C)79.9 g/mol
D)159.8 g/mol
E)Only atomic masses,and not molar masses,can be calculated for elements
A)126.9 g/mol
B)253.8 g/mol
C)79.9 g/mol
D)159.8 g/mol
E)Only atomic masses,and not molar masses,can be calculated for elements
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11
For which of the following compounds is the term formula mass better suited than the term molecular mass?
(i)F2
(ii)CaO
(iii)NH3
(iv)NaOH
(v)CH3OH
A)ii only
B)ii and iv
C)i and iii
D)ii,iv and v
E)i,iii,and v
(i)F2
(ii)CaO
(iii)NH3
(iv)NaOH
(v)CH3OH
A)ii only
B)ii and iv
C)i and iii
D)ii,iv and v
E)i,iii,and v
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12
Which of the following is the best definition of atomic mass?
A)The average mass of the atoms of an element compared to the mass of an atom of carbon-12 at exactly 12 atomic mass units
B)A property reflecting the quantity of matter in a sample
C)The mass of an atom measured in the SI unit of mass,the kilogram
D)The number of grams in a mole of a substance
E)The mass of the number of carbon atoms in exactly 12 grams of carbon-12
A)The average mass of the atoms of an element compared to the mass of an atom of carbon-12 at exactly 12 atomic mass units
B)A property reflecting the quantity of matter in a sample
C)The mass of an atom measured in the SI unit of mass,the kilogram
D)The number of grams in a mole of a substance
E)The mass of the number of carbon atoms in exactly 12 grams of carbon-12
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13
How many molecules are in 0.105 mol NH3?
A)6.32 * 1022
B)5.73 * 1024
C)1.74 *10-25
D)1.58 * 10-23
E)1.79
A)6.32 * 1022
B)5.73 * 1024
C)1.74 *10-25
D)1.58 * 10-23
E)1.79
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14
Which of the following statements is/are correct?
(i)One mole of a substance contains as many particles as exactly 12 u of carbon-12
(ii)A mole of iodine atoms contains fewer atoms than a mole of bromine atoms
(iii)There are 6.02 *1023 carbon atoms in 12.0 grams of carbon-12
(iv)Because both use carbon-12 as a reference,one mole of a low molecular mass substance contains more particles than one mole of a high molecular mass substance
(v)One mole of a substance contains 6.02*1023 particles of that substance
A)i and iii
B)i and v
C)iii and v
D)ii and iv
E)ii and v
(i)One mole of a substance contains as many particles as exactly 12 u of carbon-12
(ii)A mole of iodine atoms contains fewer atoms than a mole of bromine atoms
(iii)There are 6.02 *1023 carbon atoms in 12.0 grams of carbon-12
(iv)Because both use carbon-12 as a reference,one mole of a low molecular mass substance contains more particles than one mole of a high molecular mass substance
(v)One mole of a substance contains 6.02*1023 particles of that substance
A)i and iii
B)i and v
C)iii and v
D)ii and iv
E)ii and v
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15
Consider the following laboratory chemical.
What is the molecular mass of this substance?
A)31.02 u
B)63.02 u
C)47.02 u
D)126.04 u
E)110.01 u

A)31.02 u
B)63.02 u
C)47.02 u
D)126.04 u
E)110.01 u
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16
How many moles are in 6.27 *1024 formula units of sodium nitrate?
A)0.0960
B)10.4
C)85.0
D)3.77 * 1048
E)2.65 *10-49
A)0.0960
B)10.4
C)85.0
D)3.77 * 1048
E)2.65 *10-49
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17
Which of the following statements is/are incorrect?
A)One mole is that amount of any substance that contains the same number of units as the number of atoms in exactly 12 grams of carbon-12
B)To three significant figures,there are 6.02 * 1023 units per mole
C)The number of particles in a mole is called Avogadro's number
D)The mass of 1/12 mole of carbon-12 is 1 gram
E)The mole is a fundamental constant derived from the laws of nature
A)One mole is that amount of any substance that contains the same number of units as the number of atoms in exactly 12 grams of carbon-12
B)To three significant figures,there are 6.02 * 1023 units per mole
C)The number of particles in a mole is called Avogadro's number
D)The mass of 1/12 mole of carbon-12 is 1 gram
E)The mole is a fundamental constant derived from the laws of nature
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18
List the number of atoms of each element in a formula unit of ammonium sulfate.
A)1 nitrogen atom,4 hydrogen atoms,1 sulfur atom,4 oxygen atoms
B)1 nitrogen atom,3 hydrogen atoms,1 sulfur atom,4 oxygen atoms
C)2 nitrogen atoms,6 hydrogen atoms,1 sulfur atom,4 oxygen atoms
D)2 nitrogen atoms,8 hydrogen atoms,1 sulfur atom,4 oxygen atoms
E)1 nitrogen atom,4 hydrogen atoms,2 sulfur atoms,8 oxygen atoms
A)1 nitrogen atom,4 hydrogen atoms,1 sulfur atom,4 oxygen atoms
B)1 nitrogen atom,3 hydrogen atoms,1 sulfur atom,4 oxygen atoms
C)2 nitrogen atoms,6 hydrogen atoms,1 sulfur atom,4 oxygen atoms
D)2 nitrogen atoms,8 hydrogen atoms,1 sulfur atom,4 oxygen atoms
E)1 nitrogen atom,4 hydrogen atoms,2 sulfur atoms,8 oxygen atoms
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19
Which of the following statements is/are correct?
A)Because it is the standard,carbon has a molar mass of exactly one gram per mole
B)The phrase "molar mass of iodine" is not ambiguous,but the phrase "molar mass of potassium" is ambiguous
C)The molar mass of a substance is the mass in grams of one mole of the substance
D)The formula masses of ionic compounds are always larger,numerically,than the molar masses of those compounds
E)None of the above is correct
A)Because it is the standard,carbon has a molar mass of exactly one gram per mole
B)The phrase "molar mass of iodine" is not ambiguous,but the phrase "molar mass of potassium" is ambiguous
C)The molar mass of a substance is the mass in grams of one mole of the substance
D)The formula masses of ionic compounds are always larger,numerically,than the molar masses of those compounds
E)None of the above is correct
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20
How many atoms of each element are in a formula unit of magnesium phosphate?
A)3 magnesium atoms,2 phosphorus atoms,8 oxygen atoms
B)2 magnesium atoms,3 phosphorus atoms,12 oxygen atoms
C)1 magnesium atom,1 phosphorus atom,4 oxygen atoms
D)2 magnesium atoms,1 phosphorus atom,4 oxygen atoms
E)1 magnesium atom,2 phosphorus atoms,8 oxygen atoms
A)3 magnesium atoms,2 phosphorus atoms,8 oxygen atoms
B)2 magnesium atoms,3 phosphorus atoms,12 oxygen atoms
C)1 magnesium atom,1 phosphorus atom,4 oxygen atoms
D)2 magnesium atoms,1 phosphorus atom,4 oxygen atoms
E)1 magnesium atom,2 phosphorus atoms,8 oxygen atoms
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21
What is the mass of 0.0490 mole of potassium sulfate?
A)0.0490 g
B)3.55 kg
C)6.62 g
D)8.54 g
E)174.3 g
A)0.0490 g
B)3.55 kg
C)6.62 g
D)8.54 g
E)174.3 g
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22
How many grams of oxygen are in 8.50 g of formaldehyde,CH2O?
A)2.12 g
B)2.83 g
C)4.25 g
D)4.53 g
E)16.0 g
A)2.12 g
B)2.83 g
C)4.25 g
D)4.53 g
E)16.0 g
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23
What is the mass of 7.24 *1023 formula units of barium oxide?
A)7.85 * 10-3 g
B)1.84 * 102 g
C)1.11 *1026 g
D)2.84 * 1045 g
E)6.68 *1049 g
A)7.85 * 10-3 g
B)1.84 * 102 g
C)1.11 *1026 g
D)2.84 * 1045 g
E)6.68 *1049 g
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24
A compound analyzes as 18.0% carbon,2.26% hydrogen,and 79.7% chlorine.Calculate the empirical formula of the compound.
A)C4H3Cl4
B)C3H2Cl2
C)C3H3Cl2
D)C2H2Cl3
E)C2H3Cl3
A)C4H3Cl4
B)C3H2Cl2
C)C3H3Cl2
D)C2H2Cl3
E)C2H3Cl3
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25
Calculate the percent composition of aluminum oxide.
A)47.1% Al,52.9% O
B)52.9% Al,47.1% O
C)28.3% Al,71.7% O
D)71.1% Al,28.3% O
E)62.8% Al,37.2% O
A)47.1% Al,52.9% O
B)52.9% Al,47.1% O
C)28.3% Al,71.7% O
D)71.1% Al,28.3% O
E)62.8% Al,37.2% O
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26
Calculate the percentage composition of calcium chlorate.
A)19.4% Ca,34.3% Cl,46.4% O
B)32.4% Ca,28.7% Cl,38.8% O
C)49.0% Ca,21.8% Cl,29.3% O
D)32.4% Ca,67.6% ClO3
E)49.0% Ca,51.0% ClO3
A)19.4% Ca,34.3% Cl,46.4% O
B)32.4% Ca,28.7% Cl,38.8% O
C)49.0% Ca,21.8% Cl,29.3% O
D)32.4% Ca,67.6% ClO3
E)49.0% Ca,51.0% ClO3
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27
Calculate the number of atoms in 0.377 grams of Ar.
A)1.57 * 10-26
B)2.50 *10-23
C)5.67 * 1021
D)9.08 * 1024
E)9.42 *10-3
A)1.57 * 10-26
B)2.50 *10-23
C)5.67 * 1021
D)9.08 * 1024
E)9.42 *10-3
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28
From the following,pick those that are not empirical formulas.
(i)C2H8
(ii)C2H3
(iii)C6H6
(iv)C7H6
(v)C7H21
A)i and ii
B)ii and iv
C)iv and v
D)i,iii,and v
E)i,ii,and iii
(i)C2H8
(ii)C2H3
(iii)C6H6
(iv)C7H6
(v)C7H21
A)i and ii
B)ii and iv
C)iv and v
D)i,iii,and v
E)i,ii,and iii
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29
A certain compound is 66.7% carbon,3.74% hydrogen,and 29.6% oxygen.Find the empirical formula.
A)C3H2O
B)C3HO
C)CHO
D)CH2O
E)CH3O3
A)C3H2O
B)C3HO
C)CHO
D)CH2O
E)CH3O3
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30
Calculate the mass of silver in a sample of silver sulfide that contains 0.890 g of sulfur.
A)1.08 g
B)1.78 g
C)3.00 g
D)5.99 g
E)6.89 g
A)1.08 g
B)1.78 g
C)3.00 g
D)5.99 g
E)6.89 g
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31
How much silver nitrate must be measured to yield 1.00 g silver?
A)1.00 g
B)1.57 g
C)1.70 g
D)2.00 g
E)0.635 g
A)1.00 g
B)1.57 g
C)1.70 g
D)2.00 g
E)0.635 g
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32
Calculate the percent nitrogen in ammonium nitrate.
A)17.5%
B)21.9%
C)22.9%
D)33.3%
E)35.0%
A)17.5%
B)21.9%
C)22.9%
D)33.3%
E)35.0%
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33
Which of the following are empirical formulas?
(i)C10H8
(ii)CH2
(iii)Al2Cl6
(iv)NO2
(v)Hg2Cl2
A)i only
B)i and ii
C)ii and iv
D)i,ii,and v
E)iii,iv,and v
(i)C10H8
(ii)CH2
(iii)Al2Cl6
(iv)NO2
(v)Hg2Cl2
A)i only
B)i and ii
C)ii and iv
D)i,ii,and v
E)iii,iv,and v
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34
Calculate the percent mercury and nitrogen in mercury(II)cyanide.The formula of the cyanide ion is CN-.
A)20.0% Hg,40.0% N
B)79.4% Hg,6.2% N
C)79.4% Hg,11.1% N
D)83.4% Hg,11.6% N
E)88.5% Hg,6.2% N
A)20.0% Hg,40.0% N
B)79.4% Hg,6.2% N
C)79.4% Hg,11.1% N
D)83.4% Hg,11.6% N
E)88.5% Hg,6.2% N
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35
How many grams of calcium are in 5.00 g of calcium hydroxide?
A)0.541 g
B)2.50 g
C)2.70 g
D)3.51 g
E)40.1 g
A)0.541 g
B)2.50 g
C)2.70 g
D)3.51 g
E)40.1 g
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36
What is the empirical formula of a compound that contains 80.0% carbon and 20.0% hydrogen by mass?
A)CH3
B)CH2
C)CH
D)C3H
E)C2H3
A)CH3
B)CH2
C)CH
D)C3H
E)C2H3
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37
A coolant widely used in automobile engines is 38.7% carbon,9.7% hydrogen,and 51.6% oxygen.Calculate the empirical formula for the compound.
A)C3HO3
B)C2H3O2
C)C2H3O
D)CH3O
E)CHO
A)C3HO3
B)C2H3O2
C)C2H3O
D)CH3O
E)CHO
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38
Calculate the number of moles in 15.8 grams of aluminum hydroxide.
A)1232 mol
B)727 mol
C)15.8 mol
D)0.343 mol
E)0.203 mol
A)1232 mol
B)727 mol
C)15.8 mol
D)0.343 mol
E)0.203 mol
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39
Examine the following molecule.The component atoms are labeled.
What is the empirical formula for this substance?
A)SbCl2
B)SbCl3
C)Sb2Cl6
D)SbCl
E)Sb2Cl

A)SbCl2
B)SbCl3
C)Sb2Cl6
D)SbCl
E)Sb2Cl
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40
From the following,pick those that are empirical formulas.
(i)KCl
(ii)K2S2O8
(iii)K2SO4
(iv)K4S2
(v)KIO3
A)i and v
B)ii and iv
C)iii and iv
D)iv and v
E)i,iii,and v
(i)KCl
(ii)K2S2O8
(iii)K2SO4
(iv)K4S2
(v)KIO3
A)i and v
B)ii and iv
C)iii and iv
D)iv and v
E)i,iii,and v
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41
Determine the molecular formula of a compound that has a molar mass of 264 g/mol and the empirical formula C3H4O3.
A)CHO
B)CH1.33O
C)C9H12O9
D)C6H8O6
E)C3H4O3
A)CHO
B)CH1.33O
C)C9H12O9
D)C6H8O6
E)C3H4O3
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42
A compound is analyzed and found to contain 0.279 g C,0.0469 g H,and 0.124 g O.Its molecular mass is 116 g/mol.What is its molecular formula?
A)C5H8O3
B)C3H6O
C)C6H12O2
D)CH6O2
E)C2H12O4
A)C5H8O3
B)C3H6O
C)C6H12O2
D)CH6O2
E)C2H12O4
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43
A compound is composed of 74.0% C,8.70% H,and 17.3% N.Its molar mass is 162 g/mol.What is its molecular formula?
A)C9H12N3
B)C74H9N17
C)C6H8N
D)C5H7N
E)C10H14N2
A)C9H12N3
B)C74H9N17
C)C6H8N
D)C5H7N
E)C10H14N2
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44
A researcher finds that a compound is composed of 43.6% phosphorus and 56.4% oxygen.In a separate analysis,she finds that it has a molar mass of 142 g/mol.What is the molecular formula of the compound?
A)P4O10
B)P3O7
C)PO2
D)PO
E)P2O5
A)P4O10
B)P3O7
C)PO2
D)PO
E)P2O5
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