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Gases and Moles The Ideal Gas Equation. What factors affect the pressure of a confined gas? 1. Number of molecules 2. Temperature 3. Volume of the container.

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Presentation on theme: "Gases and Moles The Ideal Gas Equation. What factors affect the pressure of a confined gas? 1. Number of molecules 2. Temperature 3. Volume of the container."— Presentation transcript:

1 Gases and Moles The Ideal Gas Equation

2 What factors affect the pressure of a confined gas? 1. Number of molecules 2. Temperature 3. Volume of the container Think in terms of the number of collisions.

3 Number of molecules Increasing the number of molecules increases the number of collisions … P  n Where n is the number of moles of molecules … which increases the pressure.

4 Temperature Increasing the temperature makes the molecules move faster, increasing the number of collisions … P  T Where T is the absolute temperature … which increases the pressure.

5 Volume Increasing the volume of the container decreases the number of collisions … P  Where V is the volume 1V … which decreases the pressure.

6 Sooooo… P  n P  T P  1V n V T

7 nTR Make it into an equation P  n V T P  V

8 The Ideal Gas Equation n TR P  V n TR PV  … is usually written as …

9 The Ideal Gas Equation nTR P  V R = 0.0821 L atm mol K R is the “gas constant”

10 The Ideal Gas Equation nTR P  V Can R be in units other than L atm mol K ?

11 The Ideal Gas Equation nTR P  V R = 0.0821 L atm/mol K R = 8.314 L kPa/mol K R = 62.4 L torr/mol K

12 The Ideal Gas Equation nTR P  V R = 0.0821 L atm/mol K R = 8.314 L kPa/mol K R = 62.4 L torr/mol K

13 The Ideal Gas Equation nTR P  V R = 0.0821 L atm/mol K R = 8.314 L kPa/mol K R = 62.4 L torr/mol K

14 The Ideal Gas Equation nTR P  V R = 0.0821 L atm/mol K R = 8.314 L kPa/mol K R = 62.4 L torr/mol K

15 Ideal Gas Equation The ideal gas equation relates pressure, volume, temperature and the number of moles of a quantity of gas. PV = nRT

16 Ideal Gas Equation Use the ideal gas equation whenever the problem gives you mass or moles, or asks for a mass or a number of moles. PV = nRT

17 Ideal gas equation problem: Some ammonia gas (NH 3 ) is contained in a 2.50 L flask at a temperature of 20.0 C. If there are 0.0931 moles of the gas, what is its pressure?

18 Solution PV = nRT P = (nRT)/V = (0.0931 mol ) P = 0.896 atm 2.50 L )(293 K ) (0.0821 L atm mol K

19 Here’s another one Find the volume of 1.00 mole of nitrogen gas (N 2 ) at 0.0 C and 1.00 atm of pressure.

20 Solution V = (1.00 mol ) V = (1.00 mol ) 1.00 atm )(273 K ) (0.0821 L atm mol K PV = nRT V = (nRT)/P V = 22.4 L

21 Ideal gas equation problem: How many grams of sulfur trioxide are in an 855 mL container at a pressure of 1585 torr and a temperature of 434 C? The answer is 2.46 g SO 3

22 The Ideal Gas Equation can be used to derive the Combined Gas Law

23 The Combined Gas Law Start with the ideal gas equation: PV = nRT

24 The Combined Gas Law P 1 V 1 = nRT 1 P 2 V 2 = nRT 2 and Suppose the volume, pressure and temperature change to give a new pressure, volume and temperature.

25 The Combined Gas Law Now, solve for what doesn’t change, the constants n and R: P 1 V 1 = nRT 1 P 2 V 2 = nRT 2 and

26 The Combined Gas Law P1V1P1V1P1V1P1V1 = nR T1T1T1T1 P2V2P2V2P2V2P2V2 T2T2T2T2 Now, solve for what doesn’t change, the constants n and R: and

27 The Combined Gas Law Since both are equal to nR, we can make a new equation. and P1V1P1V1P1V1P1V1 = nR T1T1T1T1 P2V2P2V2P2V2P2V2 T2T2T2T2

28 The Combined Gas Law Since both are equal to nR, we can make a new equation. = P1V1P1V1P1V1P1V1 T1T1T1T1 P2V2P2V2P2V2P2V2 T2T2T2T2

29 The Combined Gas Law This is the Combined Gas Law = P1V1P1V1P1V1P1V1 T1T1T1T1 P2V2P2V2P2V2P2V2 T2T2T2T2

30 The Combined Gas Law It can be derived from the laws of Boyle, Amonton and Charles, or the Ideal Gas Equation the Ideal Gas Equation = P1V1P1V1P1V1P1V1 T1T1T1T1 P2V2P2V2P2V2P2V2 T2T2T2T2

31 The Ideal Gas Equation and Density

32 Density calculations And an equation for “moles”: Start with the equation for density: D = m V n = mM Where m = mass and M = molar mass

33 Density calculations into the ideal gas equation … PV = nRT Now substitute n = mM PV = mRT M and get and get

34 Density calculations to get to get Now rearrange PV = mRTM P = mRT VMVMVMVM

35 Density calculations Recall that Recall that D = mV P = DRT M P = mRT VMVMVMVM

36 Density calculations Solving for density, Solving for density, P = DRT M becomes: becomes: D =D =D =D = PMPMPMPMRT

37 Density calculations The density of a gas depends on the molar mass and the pressure and temperature. D = PMPMPMPMRT

38 Density Problem (a) at STP (b) at a pressure of 695 torr and a temperature of 40.0 C. 1. Determine the density of nitrogen, N 2, gas The answers are 1.25 g/L, and 0.996 g/L. and 0.996 g/L.

39 2. Determine the molar mass of a gas which has a density of 8.53 g/L at a pressure of 2.50 atm and a temperature of 500.0 K? Another Problem The answer is 140. g/mol

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