Deck 5: Gases
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Deck 5: Gases
1
To what temperature must a balloon,initially at 25∘C and 2.00 L,be heated in order to have a volume of 6.00 L?
A)993 K
B)403 K
C)75 K
D)655 K
E)894 K
A)993 K
B)403 K
C)75 K
D)655 K
E)894 K
894 K
2
What mass of NO2 is contained in a 13.0 L tank at 4.58 atm and 385 K?
A)18.8 g
B)53.1 g
C)24.4 g
D)86.7 g
E)69.2 g
A)18.8 g
B)53.1 g
C)24.4 g
D)86.7 g
E)69.2 g
86.7 g
3
What pressure (in atm)will 0.44 moles of CO2 exert in a 2.6 L container at 25°C?
A)0.35 atm
B)4.1 atm
C)4.7 atm
D)8.6 atm
E)3.6 atm
A)0.35 atm
B)4.1 atm
C)4.7 atm
D)8.6 atm
E)3.6 atm
4.1 atm
4
A syringe contains 0.65 moles of He gas that occupy 750.0 mL.What volume (in L)of gas will the syringe hold if 0.35 moles of Ne is added?
A)0.87 L
B)4.9 L
C)1.2 L
D)2.1 L
E)1.9 L
A)0.87 L
B)4.9 L
C)1.2 L
D)2.1 L
E)1.9 L
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5
If a sample of 0.29 moles of Ar occupies 3.8 L under certain conditions,what volume will 0.66 moles occupy under the same conditions?
A)12 L
B)8.6 L
C)17 L
D)5.0 L
E)15 L
A)12 L
B)8.6 L
C)17 L
D)5.0 L
E)15 L
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6
To what volume will a sample of gas expand if it is heated from 50.0°C and 2.33 L to 500.0°C?
A)5.58 L
B)9.74 L
C)10.3 L
D)17.9 L
E)4.38 L
A)5.58 L
B)9.74 L
C)10.3 L
D)17.9 L
E)4.38 L
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7
In Boyle's Law,
A)volume is inversely proportional to pressure.
B)volume is proportional to pressure.
C)pressure is inversely proportional to temperature.
D)volume is proportional to temperature.
A)volume is inversely proportional to pressure.
B)volume is proportional to pressure.
C)pressure is inversely proportional to temperature.
D)volume is proportional to temperature.
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8
The volume of a gas is proportional to the temperature of a gas is known as
A)Avogadro's Law.
B)Ideal Gas Law.
C)Charles's Law.
D)Boyle's Law.
A)Avogadro's Law.
B)Ideal Gas Law.
C)Charles's Law.
D)Boyle's Law.
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9
How many molecules of CO2 are contained in a 10.0 L tank at 7.53 atm and 485 K?
A)1.89 × 1024 molecules
B)1.14 × 1024 molecules
C)8.32 × 1024 molecules
D)4.89 × 1024 molecules
E)3.63 × 1024 molecules
A)1.89 × 1024 molecules
B)1.14 × 1024 molecules
C)8.32 × 1024 molecules
D)4.89 × 1024 molecules
E)3.63 × 1024 molecules
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10
A sample of 0.300 moles of nitrogen occupies 0.600 L.Under the same conditions,what amount of moles occupies 1.200 L?
A)0.600 moles
B)1.50 moles
C)0.33 moles
D)6.00 moles
A)0.600 moles
B)1.50 moles
C)0.33 moles
D)6.00 moles
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11
What pressure will 14.0 g of CO exert in a 3.5 L container at 75°C?
A)4.1 atm
B)5.0 atm
C)6.4 atm
D)1.1 atm
E)2.3 atm
A)4.1 atm
B)5.0 atm
C)6.4 atm
D)1.1 atm
E)2.3 atm
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12
What pressure will 2.6 × 1023 molecules of H2 exert in a 3.9 L container at 45°C?
A)5.7 atm
B)1.7 atm
C)2.9 atm
D)3.4 atm
E)4.6 atm
A)5.7 atm
B)1.7 atm
C)2.9 atm
D)3.4 atm
E)4.6 atm
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13
Calculate the temperature,in K,of 2.20 moles of gas occupying 3.50 L at 3.30 atm.
A)64.0 K
B)5.25 K
C)337 K
D)28.0 K
A)64.0 K
B)5.25 K
C)337 K
D)28.0 K
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14
What volume will a balloon occupy at 1.0 atm,if the balloon has a volume of 7.6 L at 3.8 atm?
A)2.0 L
B)5.0 L
C)29 L
D)35 L
E)17 L
A)2.0 L
B)5.0 L
C)29 L
D)35 L
E)17 L
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15
What pressure (in atm)will a sample of O2 gas occupy at 100.0 mL,if O2 has a volume of 25.00 mL at 2.0 atm?
A)4.0 atm
B)2.0 atm
C)125.atm
D)0.50 atm
E)8.00 atm
A)4.0 atm
B)2.0 atm
C)125.atm
D)0.50 atm
E)8.00 atm
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16
A large balloon is initially filled to a volume of 25.0 L at 353 K and a pressure of 2575 mm Hg.What volume of gas will the balloon contain at 1.35 atm and 253 K?
A)22.2 L
B)87.5 L
C)11.4 L
D)45.0 L
E)58.6 L
A)22.2 L
B)87.5 L
C)11.4 L
D)45.0 L
E)58.6 L
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17
How many moles of CO are contained in a 5.00 L tank at 155°C and 2.80 atm?
A)0.399 moles
B)1.10 moles
C)2.51 moles
D)0.455 moles
E)0.289 moles
A)0.399 moles
B)1.10 moles
C)2.51 moles
D)0.455 moles
E)0.289 moles
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18
A syringe initially holds a sample of gas with a volume of 285 mL at 355 K and 1.88 atm.To what temperature must the gas in the syringe be heated/cooled in order to have a volume of 435 mL at 2.50 atm?
A)139 K
B)572 K
C)175 K
D)466 K
E)721 K
A)139 K
B)572 K
C)175 K
D)466 K
E)721 K
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19
A sample of gas initially has a volume of 859 mL at 565 K and 2.20 atm.What pressure will the sample have if the volume changes to 268 mL while the temperature is increased to 815 K?
A)10.2 atm
B)9.83 atm
C)15.3 atm
D)6.53 atm
E)1.05 atm
A)10.2 atm
B)9.83 atm
C)15.3 atm
D)6.53 atm
E)1.05 atm
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20
What volume (in mL)will a sample of F2 gas occupy in a syringe at 5.5 atm,if the F2 has a volume of 25.0 mL at 1.2 atm?
A)11 mL
B)17 mL
C)3.8 mL
D)5.5 mL
E)7.6 mL
A)11 mL
B)17 mL
C)3.8 mL
D)5.5 mL
E)7.6 mL
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21
A 0.334 g sample of an unknown halogen occupies 109 mL at 398 K and 1.41 atm.What is the identity of the halogen?
A)Br2
B)F2
C)Cl2
D)I2
E)Ge
A)Br2
B)F2
C)Cl2
D)I2
E)Ge
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22
Determine the density of CO2 gas at STP.
A)1.96 g/L
B)1.80 g/L
C)2.24 g/L
D)4.46 g/L
E)5.10 g/L
A)1.96 g/L
B)1.80 g/L
C)2.24 g/L
D)4.46 g/L
E)5.10 g/L
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23
A compound is found to be 30.45% N and 69.55 % O by mass.If 1.63 g of this compound occupy 389 mL at 0.00°C and 775 mm Hg,what is the molecular formula of the compound?
A)NO2
B)N2O
C)N4O2
D)N2O5
E)N2O4
A)NO2
B)N2O
C)N4O2
D)N2O5
E)N2O4
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24
A mixture of 0.220 moles CO,0.350 moles H2 and 0.640 moles He has a total pressure of 2.95 atm.What is the pressure of CO?
A)1.86 atm
B)0.649 atm
C)0.536 atm
D)1.54 atm
E)0.955 atm
A)1.86 atm
B)0.649 atm
C)0.536 atm
D)1.54 atm
E)0.955 atm
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25
Which of the following gas samples would be most likely to behave ideally under the stated conditions?
A)Ne at STP
B)CO at 200 atm and 25°C
C)SO2 at 2 atm and 0 K
D)N2 at 1 atm and -70°C
E)O2 at 400 atm and 25°C
A)Ne at STP
B)CO at 200 atm and 25°C
C)SO2 at 2 atm and 0 K
D)N2 at 1 atm and -70°C
E)O2 at 400 atm and 25°C
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26
Determine the density of NH3 gas at 435 K and 1.00 atm.
A)2.10 g/L
B)0.477 g/L
C)0.321 g/L
D)2.24 g/L
E)0.851 g/L
A)2.10 g/L
B)0.477 g/L
C)0.321 g/L
D)2.24 g/L
E)0.851 g/L
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27
What is the mole fraction of CO in a container with a H2 mole fraction of 0.22 and an O2 mole fraction of 0.58?
A)0.20
B)0.30
C)0.10
D)0.50
A)0.20
B)0.30
C)0.10
D)0.50
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28
Which of the following samples will have the lowest pressure if they are all at the same temperature and in identical containers (same V)?
A)15 g F2
B)15 g Ne
C)15 g Kr
D)15 g CO2
E)All of these samples will have the same pressure.
A)15 g F2
B)15 g Ne
C)15 g Kr
D)15 g CO2
E)All of these samples will have the same pressure.
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29
Which of the following samples will have the greatest volume at STP?
A)22 g CO
B)22 g He
C)22 g O2
D)22 g Cl2
E)All of these samples would have the same volume at STP.
A)22 g CO
B)22 g He
C)22 g O2
D)22 g Cl2
E)All of these samples would have the same volume at STP.
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30
A mixture of N2,O2 and Ar has mole fractions of 0.25,0.65,and 0.10,respectively.What is the pressure of N2 if the total pressure of the mixture is 3.9 atm?
A)2.5 atm
B)0.39 atm
C)0.67 atm
D)0.98 atm
E)1.33 atm
A)2.5 atm
B)0.39 atm
C)0.67 atm
D)0.98 atm
E)1.33 atm
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31
Using the graph below,determine the gas that has the lowest density at STP. 
A)A
B)B
C)C
D)D
E)All of the gases have the same density at STP.

A)A
B)B
C)C
D)D
E)All of the gases have the same density at STP.
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32
What volume will 0.780 moles of He occupy at STP?
A)22.4 L
B)70.0 L
C)43.7 L
D)17.5 L
E)15.6 L
A)22.4 L
B)70.0 L
C)43.7 L
D)17.5 L
E)15.6 L
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33
A mixture of 1.0 mol He and 1.0 mol Ne are at STP in a rigid container.Which of the following statements is true?
A)Both gases have the same average kinetic energy.
B)Both gases contribute equally to the density of the mixture under these conditions.
C)Both gases have the same molecular speed.
D)The mixture has a volume of 22.4 L.
E)All of the above are true.
A)Both gases have the same average kinetic energy.
B)Both gases contribute equally to the density of the mixture under these conditions.
C)Both gases have the same molecular speed.
D)The mixture has a volume of 22.4 L.
E)All of the above are true.
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34
A mixture of 0.220 moles CO,0.350 moles H2 and 0.640 moles He has a total pressure of 2.95 atm.What is the pressure of H2?
A)1.17 atm
B)0.853 atm
C)1.03 atm
D)0.969 atm
E)0.649 atm
A)1.17 atm
B)0.853 atm
C)1.03 atm
D)0.969 atm
E)0.649 atm
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35
The density of a gas is 1.43 g/mole at STP.What is the gas?
A)Cl2
B)S
C)O2
D)Ne
A)Cl2
B)S
C)O2
D)Ne
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36
Which of the following samples has the greatest density at STP?
A)NO2
B)Xe
C)SO2
D)SF6
E)All of these samples have the same density at STP.
A)NO2
B)Xe
C)SO2
D)SF6
E)All of these samples have the same density at STP.
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37
A mixture of He,Ne and Ar has a pressure of 7.85 atm.If the Ne has a mole fraction of 0.47 and Ar has a mole fraction of 0.23,what is the pressure of He?
A)4.2 atm
B)3.7 atm
C)1.8 atm
D)5.5 atm
E)2.4 atm
A)4.2 atm
B)3.7 atm
C)1.8 atm
D)5.5 atm
E)2.4 atm
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38
Place the following gases in order of increasing density at STP.
N2 NH3 N2O4 Ar
A)N2O4 < Ar < N2 < NH3
B)Ar < N2O4 < N2 < NH3
C)N2 < Ar < N2O4 < NH3
D)NH3 < N2 < Ar < N2O4
E)Ar < N2 < NH3 < N2O4
N2 NH3 N2O4 Ar
A)N2O4 < Ar < N2 < NH3
B)Ar < N2O4 < N2 < NH3
C)N2 < Ar < N2O4 < NH3
D)NH3 < N2 < Ar < N2O4
E)Ar < N2 < NH3 < N2O4
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39
A 0.465 g sample of an unknown compound occupies 245 mL at 298 K and 1.22 atm.What is the molar mass of the unknown compound?
A)26.3 g/mol
B)33.9 g/mol
C)12.2 g/mol
D)38.0 g/mol
E)81.8 g/mol
A)26.3 g/mol
B)33.9 g/mol
C)12.2 g/mol
D)38.0 g/mol
E)81.8 g/mol
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40
What volume will 4.91 × 1022 atoms of Ne occupy at STP?
A)1.10 L
B)2.00 L
C)2.24 L
D)3.11 L
E)1.83 L
A)1.10 L
B)2.00 L
C)2.24 L
D)3.11 L
E)1.83 L
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41
A mixture of 10.0 g of Ne and 10.0 g Ar has a total pressure of 1.6 atm.What is the partial pressure of Ne?
A)1.1 atm
B)0.80 atm
C)0.54 atm
D)0.40 atm
E)1.3 atm
A)1.1 atm
B)0.80 atm
C)0.54 atm
D)0.40 atm
E)1.3 atm
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42
Calculate the root mean square velocity of nitrogen molecules at 25°C.
A)729 m/s
B)515 m/s
C)149 m/s
D)297 m/s
A)729 m/s
B)515 m/s
C)149 m/s
D)297 m/s
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43
Rank the following in order of decreasing rate of effusion.
F2 SF6 CO Kr
A)SF6 > Kr > F2 > CO
B)Kr > CO > SF6 > F2
C)F2 > Kr > CO > SF6
D)CO > F2 > Kr > SF6
E)CO > F2 > SF6 > Kr
F2 SF6 CO Kr
A)SF6 > Kr > F2 > CO
B)Kr > CO > SF6 > F2
C)F2 > Kr > CO > SF6
D)CO > F2 > Kr > SF6
E)CO > F2 > SF6 > Kr
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44
Calculate the ratio of effusion rates of Cl2 to F2.
A)1.3661
B)0.53588
C)1.8661
D)0.28716
E)0.73204
A)1.3661
B)0.53588
C)1.8661
D)0.28716
E)0.73204
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45
Identify the molecule that effuses the fastest.
A)CO
B)Ar
C)CH4
D)CO2
A)CO
B)Ar
C)CH4
D)CO2
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46
A gas mixture contains CO,Ar and H2.What is the total pressure of the mixture,if the mole fraction of H2 is 0.35 and the pressure of H2 is 0.58 atm?
A)1.7 atm
B)0.20 atm
C)0.49 atm
D)0.60 atm
E)2.1 atm
A)1.7 atm
B)0.20 atm
C)0.49 atm
D)0.60 atm
E)2.1 atm
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47
Determine the mass of water formed when 12.5 L NH3 (at 298 K and 1.50 atm)is reacted with 18.9 L of O2 (at 323 K and 1.1 atm).
4 NH3(g)+ 5 O2(g)→ 4 NO(g)+ 6 H2O(g)
A)17.0 g H2O
B)20.7 g H2O
C)37.7 g H2O
D)13.8 g H2O
E)27.9 g H2O
4 NH3(g)+ 5 O2(g)→ 4 NO(g)+ 6 H2O(g)
A)17.0 g H2O
B)20.7 g H2O
C)37.7 g H2O
D)13.8 g H2O
E)27.9 g H2O
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48
Which statement is true about kinetic molecular theory?
A)A single particle does not move in a straight line.
B)The size of the particle is large compared to the volume.
C)The collisions of particles with one another is completely elastic.
D)The average kinetic energy of a particle is not proportional to the temperature.
A)A single particle does not move in a straight line.
B)The size of the particle is large compared to the volume.
C)The collisions of particles with one another is completely elastic.
D)The average kinetic energy of a particle is not proportional to the temperature.
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49
The following reaction is used to generate hydrogen gas in the laboratory.If 243 mL of gas is collected at 25°C and has a total pressure of 745 mm Hg,what mass of hydrogen is produced? A possibly useful table of water vapor pressures is provided below.
Mg(s)+ 2 HCl(aq)→ MgCl2(aq)+ H2(g)T (°C)P (mm Hg)
20 17.55
25 23.78
30 31.86
A)0.0196 g H2
B)0.0717 g H2
C)0.0190 g H2
D)0.0144 g H2
E)0.0449 g H2
Mg(s)+ 2 HCl(aq)→ MgCl2(aq)+ H2(g)T (°C)P (mm Hg)
20 17.55
25 23.78
30 31.86
A)0.0196 g H2
B)0.0717 g H2
C)0.0190 g H2
D)0.0144 g H2
E)0.0449 g H2
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50
A gas mixture consists of N2,O2,and Ne,where the mole fraction of N2 is 0.55 and the mole fraction of Ne is 0.25.If the mixture is at STP in a 5.0 L container,how many molecules of O2 are present?
A)4.5 × 1022 molecules O2
B)2.7 × 1022 molecules O2
C)3.7 × 1023 molecules O2
D)1.1 × 1023 molecules O2
E)9.3 × 1024 molecules O2
A)4.5 × 1022 molecules O2
B)2.7 × 1022 molecules O2
C)3.7 × 1023 molecules O2
D)1.1 × 1023 molecules O2
E)9.3 × 1024 molecules O2
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51
Determine the volume of SO2 (at STP)formed from the reaction of 96.7 g of FeS2 and 55.0 L of O2 (at 398 K and 1.20 atm).The molar mass of FeS2 is 119.99 g/mol.
4 FeS2(s)+ 11 O2(g)→ 2 Fe2O3(s)+ 8 SO2(g)
A)36.1 L
B)45.3 L
C)18.1 L
D)27.6 L
E)32.9 L
4 FeS2(s)+ 11 O2(g)→ 2 Fe2O3(s)+ 8 SO2(g)
A)36.1 L
B)45.3 L
C)18.1 L
D)27.6 L
E)32.9 L
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52
Determine the volume of O2 (at STP)formed when 50.0 g of KClO3 decomposes according to the following reaction.The molar mass for KClO3 is 122.55 g/mol.
2 KClO3(s)→ 2 KCl(s)+ 3 O2(g)
A)9.14 L
B)8.22 L
C)12.3 L
D)13.7 L
E)14.6 L
2 KClO3(s)→ 2 KCl(s)+ 3 O2(g)
A)9.14 L
B)8.22 L
C)12.3 L
D)13.7 L
E)14.6 L
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53
Determine the theoretical yield and the percent yield if 21.8 g of K2CO3 is produced from reacting 27.9 g KO2 with 29.0 L of CO2 (at STP).The molar mass of KO2 = 71.10 g/mol and K2CO3 = 138.21 g/mol.
4 KO2(s)+ 2 CO2(g)→ 2 K2CO3(s)+ 3 O2(g)
A)27.1 g,80.4 % yield
B)179 g,12.2 % yield
C)91.7 g,23.8 % yield
D)206 g,10.6 % yield
E)61.0 g,35.7 % yield
4 KO2(s)+ 2 CO2(g)→ 2 K2CO3(s)+ 3 O2(g)
A)27.1 g,80.4 % yield
B)179 g,12.2 % yield
C)91.7 g,23.8 % yield
D)206 g,10.6 % yield
E)61.0 g,35.7 % yield
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54
A gas sample contains 0.33 atm of Ne,0.45 atm of Ar,and 0.32 atm of CO.What is the total pressure?
A)1.1 atm
B)1.2 atm
C)1.0 atm
D)0.51 atm
A)1.1 atm
B)1.2 atm
C)1.0 atm
D)0.51 atm
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55
A syringe contains 589 mL of CO at 325 K and 1.2 atm pressure.A second syringe contains 473 mL of N2 at 298 K and 2.6 atm.What is the final pressure if the contents of these two syringes are injected into a 1.00 L container at STP?
A)0.59 atm
B)1.1 atm
C)1.7 atm
D)1.9 atm
E)3.8 atm
A)0.59 atm
B)1.1 atm
C)1.7 atm
D)1.9 atm
E)3.8 atm
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56
How many molecules of XeF6 are formed from 12.9 L of F2 (at 298 K and 2.60 atm)according to the following reaction? Assume that there is excess Xe. Xe(g)+ 3 F2(g)→ XeF6(g)
A)1.21 × 1023 molecules XeF6
B)8.25 × 1023 molecules XeF6
C)2.75 × 1023 molecules XeF6
D)7.29 × 1023 molecules XeF6
E)1.37 × 1023 molecules XeF6
A)1.21 × 1023 molecules XeF6
B)8.25 × 1023 molecules XeF6
C)2.75 × 1023 molecules XeF6
D)7.29 × 1023 molecules XeF6
E)1.37 × 1023 molecules XeF6
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57
What pressure would a gas mixture in a 10.0 L tank exert if it were composed of 48.5 g He and 94.6 g CO2 at 398 K?
A)39.6 atm
B)7.02 atm
C)32.6 atm
D)46.6 atm
E)58.7 atm
A)39.6 atm
B)7.02 atm
C)32.6 atm
D)46.6 atm
E)58.7 atm
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58
Determine the total pressure of all gases (at STP)formed when 50.0 mL of TNT (C3H5(NO3)3,
D = 1.60 g/mL,molar mass = 227.10 g/mol)reacts according to the following reaction.
4 C3H5(NO3)3(l)→ 6 N2(g)+ O2(g)+ 12 CO2(g)+ 10 H2O(g)
A)4.93 L
B)57.2 L
C)29.6 L
D)448 L
E)175 L
D = 1.60 g/mL,molar mass = 227.10 g/mol)reacts according to the following reaction.
4 C3H5(NO3)3(l)→ 6 N2(g)+ O2(g)+ 12 CO2(g)+ 10 H2O(g)
A)4.93 L
B)57.2 L
C)29.6 L
D)448 L
E)175 L
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59
Determine the volume of H2S (at 375 K and 1.20 atm)needed to produce 55.0 g of S.Assume that there is excess SO2 present.
2 H2S(g)+ SO2(g)→ 3 S(s)+ 2 H2O(g)
A)44.0 L
B)29.3 L
C)22.7 L
D)34.1 L
E)66.0 L
2 H2S(g)+ SO2(g)→ 3 S(s)+ 2 H2O(g)
A)44.0 L
B)29.3 L
C)22.7 L
D)34.1 L
E)66.0 L
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60
Which of the gases in the graph below has the largest molar mass? 
A)A
B)B
C)C
D)D
E)There is not enough information to determine.

A)A
B)B
C)C
D)D
E)There is not enough information to determine.
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61
Which of the following will cause the volume of an ideal gas to triple in value?
A)raising the temperature from 25°C to 75°C at constant pressure
B)lowering the absolute temperature by a factor of 3 at constant pressure
C)raising the absolute temperature by a factor of 3 while increasing the pressure by a factor of 3
D)lowering the absolute temperature by a factor of 3 while increasing the pressure by a factor of 3
E)lowering the pressure by a factor of 3 while the temperature stays constant
A)raising the temperature from 25°C to 75°C at constant pressure
B)lowering the absolute temperature by a factor of 3 at constant pressure
C)raising the absolute temperature by a factor of 3 while increasing the pressure by a factor of 3
D)lowering the absolute temperature by a factor of 3 while increasing the pressure by a factor of 3
E)lowering the pressure by a factor of 3 while the temperature stays constant
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62
A sample of N2 effuses in 255 s.How long will the same size sample of Cl2 take to effuse?
A)406 s
B)247 s
C)645 s
D)155 s
E)388 s
A)406 s
B)247 s
C)645 s
D)155 s
E)388 s
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63
Why does hot air rise?
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64
Why doesn't Dalton's Law of Partial Pressures depend on the identity of the gases present?
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65
What is the major component in dry air?
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66
Match the following.
Avogadro's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
Avogadro's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
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67
Consider a container of gas under a particular P,V,T set of conditions.Describe how the pressure would change if the volume were doubled while the absolute temperature was doubled.
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68
Match the following.
Ideal Gas Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
Ideal Gas Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
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69
Match the following.
Boyle's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
Boyle's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
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70
Match the following.
Charles's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
Charles's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
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71
Define diffusion.
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72
Which of the following statements is true?
A)Particles of different masses have the same average speed at a given temperature.
B)The larger a molecule,the faster it will effuse.
C)At very high pressures,a gas will occupy a larger volume than predicted by the ideal gas law.
D)For a given gas,the lower the temperature,the faster it will effuse.
E)None of the above statements are true.
A)Particles of different masses have the same average speed at a given temperature.
B)The larger a molecule,the faster it will effuse.
C)At very high pressures,a gas will occupy a larger volume than predicted by the ideal gas law.
D)For a given gas,the lower the temperature,the faster it will effuse.
E)None of the above statements are true.
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73
Match the following.
Dalton's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
Dalton's Law
A)PV = nRT
B)V1/n1 = V2/n2
C)PT = PA + PB + PC ...
D)P1V1 = P2V2
E)V1/T1 = V2/T2
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74
Define effusion.
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75
Why does the rate of effusion increase with a decrease in the molar mass?
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76
Explain what the term "mean free path" describes.How does it change with decreasing pressure?
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77
The rate of effusion of oxygen to an unknown gas is 0.935.What is the other gas?
A)Ne
B)Ar
C)F2
D)N2
A)Ne
B)Ar
C)F2
D)N2
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78
Which of the following samples will have the greatest average speed at 355 K?
A)Ne
B)C2H4
C)Cl2
D)CH4
E)All of these samples will have the same average speed at the same temperature.
A)Ne
B)C2H4
C)Cl2
D)CH4
E)All of these samples will have the same average speed at the same temperature.
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79
Which of the following statements is true?
A)At a given temperature,lighter gas particles travel more slowly than heavier gas particles.
B)The smaller a gas particle,the slower it will effuse
C)The higher the temperature,the lower the average kinetic energy of the sample.
D)At low temperatures,intermolecular forces become important and the pressure of a gas will be lower than predicted by the ideal gas law.
E)None of the above statements are true.
A)At a given temperature,lighter gas particles travel more slowly than heavier gas particles.
B)The smaller a gas particle,the slower it will effuse
C)The higher the temperature,the lower the average kinetic energy of the sample.
D)At low temperatures,intermolecular forces become important and the pressure of a gas will be lower than predicted by the ideal gas law.
E)None of the above statements are true.
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80
Which of the following compounds will behave least like an ideal gas at low temperatures?
A)He
B)SO2
C)H2
D)N2
E)F2
A)He
B)SO2
C)H2
D)N2
E)F2
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