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Chapter 10 Gases Teacher Note The solutions to many of the calculations are worked out in a packet in the folder for Chapter 10.

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Presentation on theme: "Chapter 10 Gases Teacher Note The solutions to many of the calculations are worked out in a packet in the folder for Chapter 10."— Presentation transcript:

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2 Chapter 10 Gases

3 Teacher Note The solutions to many of the calculations are worked out in a packet in the folder for Chapter 10.

4 Barometers and Standard Atmospheric Pressure

5 Standard atmospheric pressure defined as the pressure sufficient to support a mercury column of 760mm (units of mmHg, or torr).

6 Barometers and Standard Atmospheric Pressure Standard atmospheric pressure defined as the pressure sufficient to support a mercury column of 760mm (units of mmHg, or torr). Another unit was introduced to simplify things, the atmosphere (1 atm = 760 mmHg).

7 Barometers and Standard Atmospheric Pressure Standard atmospheric pressure defined as the pressure sufficient to support a mercury column of 760mm (units of mmHg, or torr). Another unit was introduced to simplify things, the atmosphere (1 atm = 760 mmHg). 1 atm = 760 mmHg = 760 torr = 101.325 kPa (page 262).

8 STP standard temperature and pressure Standard temperature 0°C or 273 K Standard pressure 1 atm (or equivalent)

9 –Pressure varies inversely with volume –Volume varies inversely with pressure “The volume of a sample of gas is inversely proportional to its pressure, if temperature remains constant.”

10 Boyle’s Law

11 Boyle’s Law: Pressure & Volume (Figure 10.6 (a) page 263)

12 Boyle’s Law: Pressure-Volume Relationships A sample of air occupies 73.3 mL at 98.7 atm and 0 ºC. What volume will the air occupy at 4.02 atm and 0 ºC? 1800 mL

13 Boyle’s Law: Pressure-Volume Relationships A sample of helium occupies 535 mL at 988 mmHg and 25 °C. If the sample is transferred to a 1.05-L flask at 25 °C, what will be the gas pressure in the flask? 503 mm Hg

14 Effects of temperature on a gas Volume varies directly with Temperature “The volume of a quantity of gas, held at constant pressure, varies directly with the Kelvin temperature.”

15 Charles’s Law a

16 Charles Law: Volume and Temperature (Figure 10.8 Page 266)

17 Charles’ Law and Absolute Zero Extrapolation to zero volume gives a temperature of -273°C or 0 K

18 A sample of oxygen gas occupies a volume of 2.10 L at 25 °C. What volume will this sample occupy at 150 °C? (Assume no change in pressure.) Charles’s Law: Temperature-Volume Relationships 2.98 L

19 A sample of oxygen gas occupies a volume of 2.10 L at 25 °C. At what Celsius temperature will the volume of oxygen occupy 0.750 L? (Assume no change in pressure.) Charles’s Law: Temperature-Volume Relationships -167°C

20 Pressure vs. Temperature Pressure varies directly with Temperature If the temperature of a fixed volume of gas doubles its pressure doubles.

21 Pressure vs. Temperature The pressure exerted by a gas is directly related to the Kelvin temperature. V is constant.

22 Pressure vs. Temperature

23 Example A gas has a pressure of 645 torr at 128°C. What is the temperature in Celsius if the pressure increases to 1.50 atm? P i = 645 torr P f = 1.50 atm 760 torr = 1140 torr 1 atm T i = 128°C + 273 = 401 KT f = ?K

24 Solution T 2 = 401 K x 1140 torr = 709K 645 torr 709K - 273 = 436°C

25 Combined Gas Law Problem A sample of helium gas has a volume of 0.180 L, a pressure of 0.800 atm and a temperature of 29°C. What is the new temperature(°C) of the gas at a volume of 90.0 mL and a pressure of 3.20 atm?

26 Combined Gas Law Problem A sample of helium gas has a volume of 0.180 L, a pressure of 0.800 atm and a temperature of 29°C. What is the new temperature(°C) of the gas at a volume of 90.0 mL and a pressure of 3.20 atm? x 3.20 atm x 90.0 mL 0.800 atm 180.0 mL 604 K - 273 = 331 °C 302 K= 604 K

27 Combined Gas Law A 10.0 cm 3 volume of gas measured 75.6 kPa and 60.0  C is to be corrected to correspond to the volume it would occupy at STP. 6.12 cm 3

28 Gay-Lussac’s Law of combining volumes: at a given temperature and pressure, the volumes of gases which react are ratios of small whole numbers. Gay-Lussac’s Law

29 How many liters of steam can be formed from 8.60L of oxygen gas? 17.2 L

30 How many liters of hydrogen gas will react with 1L of nitrogen gas to form ammonia gas? 3L H 2

31 A

32 How many mL of hydrogen are needed to produce 13.98 mL of ammonia? A 20.97 ml NH 3

33 Avogadro’s Law: Equal volumes of gases at the same temperature and pressure contain the same number of particles.

34 The molar volume of a gas at STP = 22.4L 22.4 L

35 Ideal Gas An ideal gas is defined as one for which both the volume of molecules and forces of attraction between the molecules are so small that they have no effect on the behavior of the gas.

36 Ideal Gas Equation PV=nRT

37 R values a I R values for atm and kPa on Page 272 in book. A

38 Calculate the volume occupied by 0.845 mol of nitrogen gas at a pressure of 1.37 atm and a temperature of 315 K. 15.9 L

39 Find the pressure in millimeters of mercury of a 0.154 g sample of helium gas at 32°C and contained in a 648 mL container. 1130 mm Hg

40 An experiment shows that a 113 mL gas sample has a mass of 0.171 g at a pressure of 721 mm Hg and a temperature of 32°C. What is the molar mass (molecular weight) of the gas? 40.0 g/mol

41 Can the ideal “gas” equation be used to determine the molar mass of a liquid?

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43 Homework Do the lab summary for “The Molecular Mass of a Volatile Liquid”. It is due ____. Attempt the pre-lab for “The Molecular Mass of a Volatile Liquid”. It is due ____.

44 Problem: A volatile liquid is placed in a flask whose volume is 590.0 ml and allowed to boil until all of the liquid is gone, and only vapor fills the flask at a temperature of 100.0 o C and 736 mm Hg pressure. If the mass of the flask before and after the experiment was 148.375g and 149.457 g, what is the molar mass of the liquid? 57.9 g/mol

45 What is the density of methane gas (natural gas), CH 4, at 125 o C and 3.50 atm? 1.71 g/L

46 Calculate the density in g/L of O 2 gas at STP. 1.43 g/L

47 Dalton’s Law of Partial Pressure The total pressure in a container is the sum of the partial pressures of all the gases in the container. In a gaseous mixture, a gas’s partial pressure is the one the gas would exert if it were by itself in the container. P total = P 1 + P 2 + P 3 P total = 100 KPa + 250 KPa + 200 KPa = 550 KPa

48 AB Total = 6.0 atm PVV mixture P A2.0 atm1.0 L2.0 atm B4.0 atm1.0 L4.0 atm Two 1.0 L containers, A and B, contain gases with 2.0 atm and 4.0 atm, respectively. Both gases are forced into Container B. Find the total pressure of the gas mixture in B. 1.0 L

49 Dalton’s Law Problem Air contains oxygen, nitrogen, carbon dioxide, and trace amounts of other gases. What is the partial pressure of oxygen at standard conditions if the partial pressure of nitrogen, carbon dioxide, and other gases are 79.1 KPa, 0.04 KPa, and 0.94 KPa respectively? P total = P O 2 + P N 2 + P CO 2 + P Other gases 101.3 KPa = P O 2 + 79.1 KPa + 0.04 KPa + 0.94KPa P O 2 = 101.3 KPa – (79.1 KPa + 0.04 KPa + 0.94KPa) P O 2 = 21.2 KPa

50 ABZ Two 1.0 L containers, A and B, contain gases with 2.0 atm and 4.0 atm, respectively. Both gases are forced into Container Z (vol. 2.0 L). Find the total pressure of mixture in Z.

51 ABZ Total = 3.0 atm Two 1.0 L containers, A and B, contain gases with 2.0 atm and 4.0 atm, respectively. Both gases are forced into Container Z (vol. 2.0 L). Find the total pressure of mixture in Z. PXPX VXVX VZVZ P X,Z A2.0 atm1.0 L 2.0 L 1.0 atm B4.0 atm1.0 L2.0 atm

52 AB ZC Find total pressure of the gas mixture in Container Z. 1.3 L 2.6 L 3.8 L 2.3 L 3.2 atm 1.4 atm 2.7 atm X atm

53 AB ZC Total = 7.9 atm Find total pressure of the gas mixture in Container Z. 1.3 L 2.6 L 3.8 L 2.3 L 3.2 atm 1.4 atm 2.7 atm X atm PXPX VXVX VZVZ P X,Z A3.2 atm1.3 L 2.3 L 1.8 atm B1.4 atm2.6 L1.6 atm C2.7 atm3.8 L4.5 atm

54 Dalton’s Law Zumdahl, Zumdahl, DeCoste, World of Chemistry  2002, page 422

55 Dalton’s Partial Pressures Zumdahl, Zumdahl, DeCoste, World of Chemistry  2002, page 421

56 Dalton’s Law of Partial Pressures The mole ratio in a mixture of gases determines each gas’s partial pressure. Total pressure of mixture (3.0 mol He and 4.0 mol Ne) is 97.4 kPa. Find partial pressure of each gas

57 Dalton’s Law of Partial Pressures Total pressure of mixture (3.0 mol He and 4.0 mol Ne) is 97.4 kPa. Find partial pressure of each gas.

58 80.0 g each of He, Ne, and Ar are in a container. The total pressure is 780 mm Hg. Find each gas’s partial pressure.

59 Total: 26 mol gas P He = 20 / 26 of total P Ne = 4 / 26 of total P Ar = 2 / 26 of total

60

61

62 Example: A student generates oxygen gas and collects it over water. If the volume of the gas is 245 mL and the barometric pressure is 758.0 torr at 25 o C, what is the volume of the “dry” oxygen gas at STP? (P water = 23.8 torr at 25 o C) P O2 = P T - P water = 758.0 torr - 23.8 torr = 734.2 torr

63 Find the molar mass of an unknown gas if a 0.16 g sample of the gas is collected over water and equalized to a pressure of 781.7 torr and a volume of 90.0 mL at a temperature of 28°C.

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65 44 g/mol

66 Homework Do the AP sample problem (1999 Test question #5) in notebook. It will be included as part of your homework. Don’t forget the pre-lab and lab summary for “The Molecular Mass of a Volatile Liquid”.

67 Gas Diffusion and Effusion Graham's Law: governs the rate of effusion and diffusion of gas molecules.

68 “Stink” or “Die” a

69 The Root Mean Square Speed Fig. 10.17 Page 285

70 NET NET MOVEMENT To use Graham’s Law, both gases must be at same temperature. diffusion diffusion: particle movement from high to low concentration effusion effusion: diffusion of gas particles through an opening For gases, rates of diffusion & effusion obey Graham’s law: more massive = slow; less massive = fast

71 Gas Diffusion and Effusion Graham's Law: governs the rate of effusion and diffusion of gas molecules. Rate of diffusion/effusion is inversely proportional to its molar mass. Rate of diffusion/effusion is inversely proportional to its molar mass.

72 Determine the relative rate of diffusion for krypton and bromine. Kr diffuses 1.381 times faster than Br 2. Graham’s Law The lightest gas is “Gas A” and the heavier gas is “Gas B”. Relative rate means find the ratio “v A /v B ”. Kr 83.80 36 Br 79.904 35

73 A molecule of oxygen gas has an average speed of 12.3 m/s at a given temp and pressure. What is the average speed of hydrogen molecules at the same conditions? Graham’s Law O 15.9994 8 H 1.00794 1

74 An unknown gas diffuses 4.0 times faster than O 2. Find its molar mass. Graham’s Law The lightest gas is “Gas A” and the heavier gas is “Gas B”. The ratio “v A /v B ” is 4.0. Square both sides to get rid of the square root sign. O 15.9994 8 H2H2 2.0 1

75 Theory developed to explain gas behavior. Theory of moving molecules. Assumptions: –Gases consist of a large number of molecules in constant random motion. –Volume of individual molecules negligible compared to volume of container. –Intermolecular forces (forces between gas molecules) negligible. –Energy can be transferred between molecules, but total kinetic energy is constant at constant temperature. –Average kinetic energy of molecules is proportional to temperature. Kinetic Molecular Theory

76 Kinetic molecular theory gives us an understanding of pressure and temperature on the molecular level. Pressure of a gas results from the number of collisions per unit time on the walls of container. Magnitude of pressure given by how often and how hard the molecules strike. Gas molecules have an average kinetic energy. Each molecule has a different energy. Kinetic Molecular Theory

77 There is a spread of individual energies of gas molecules in any sample of gas. Kinetic Molecular Theory As the temperature increases, the average kinetic energy of the gas molecules increases

78 As kinetic energy increases, the velocity of the gas molecules increases. Root mean square speed, u, is the speed of a gas molecules having the certain average kinetic energy. Average kinetic energy, , is related to root mean square speed, u: Kinetic Molecular Theory a

79 As kinetic energy increases, the velocity of the gas molecules increases. Root mean square speed, u, is the speed of a gas molecules having the certain average kinetic energy. Average kinetic energy, , is related to root mean square speed, u: Kinetic Molecular Theory a

80 As the volume of a container of gas increases at constant temperature, the gas molecules have to travel further to hit the walls of the container. There are fewer collisions by the gas molecules with the walls of the container. Therefore, pressure decreases. If temperature increases at constant volume, the average kinetic energy of the gas molecules increases. Therefore, there are more collisions with the container walls and the pressure increases. How does this theory explain Boyles Law?

81 If temperature increases at constant volume, the average kinetic energy of the gas molecules increases and they speed up. Therefore, there are more frequent and more forceful collisions with the container walls by the gas molecules and the pressure increases. How does this theory explain Charles Law?

82 Ideal Gases vs. Real Gases An ideal gas is an “imaginary gas” made up of particles with negligible particle volume and negligible attractive forces.

83 Ideal Gases vs. Real Gases In a “Real Gas” the molecules of a gas do have volume and the molecules do attract each other. Therefore anything that makes gas particles more likely to stick together or stay close to one another make them behave less ideally.

84 As the volume becomes smaller, the molecules get closer together, and a greater fraction of the occupied space is actually taken up by gas molecules. Therefore, the higher the pressure, the less the gas resembles an ideal gas. Real Gases: Deviations from Ideal Behavior As the pressure on a gas increases, the molecules are forced into a smaller volume.

85 The smaller the distance between gas molecules, the more likely attractive forces will develop between the molecules. As temperature increases, the gas molecules move faster and are further apart. Also, higher temperatures mean more energy available to break intermolecular forces. Therefore, the higher the temperature, the more ideal the gas. Real Gases: Deviations from Ideal Behavior

86 A real gas typically exhibits behavior closest to “ideal gas” behavior at low pressures and high temperatures. Real Gases and Ideal Behavior

87 We add two terms to the ideal gas equation one to correct for volume of molecules and the other to correct for intermolecular attractions The correction terms generate the van der Waals equation: where a and b are empirical constants. Real Gases: The van der Waals equation a corrects for the effect of molecular attractions (van der Waals forces), and b corrects for the molecular volume

88 We add two terms to the ideal gas equation one to correct for volume of molecules and the other to correct for intermolecular attractions The correction terms generate the van der Waals equation: You will not be required to solve this equation but you should know its form and which variables need to be corrected.You will not be required to solve this equation but you should know its form and which variables need to be corrected. Real Gases: The van der Waals equation a corrects for the effect of molecular attractions (van der Waals forces), and b corrects for the molecular volume

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