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The Gas Laws Chemistry Dr. May.

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Presentation on theme: "The Gas Laws Chemistry Dr. May."— Presentation transcript:

1 The Gas Laws Chemistry Dr. May

2 Gaseous Matter Indefinite volume and no fixed shape
Particles move independently of each other Particles have gained enough energy to overcome the attractive forces that held them together as solids and liquids

3 Avogadro’s Number One mole of a gas contains Avogadro’s number of molecules Avogadro’s number is 6.02 x or 602,000,000,000,000,000,000,000

4 Diatomic Gas Elements Gas Hydrogen (H2) Nitrogen (N2) Oxygen (O2)
Fluorine (F2) Chlorine (Cl2) Molar Mass 2 grams/mole 28 grams/mole 32 grams/mole 38 grams/mole 70 grams/mole

5 Inert Gas Elements Gas Helium Neon Argon Krypton Xenon Radon
Molar Mass 4 grams/mole 20 grams/mole 40 grams/mole 84 grams/mole 131 grams/mole 222 grams/mole

6 Other Important Gases Gas Carbon Dioxide Carbon Monoxide
Sulfur Dioxide Methane Ethane Freon 14 Formula Molar Mass CO2 44 g/mole CO 28 g/mole SO2 64 g/mole CH4 16 g/mole CH3CH3 30 g/mole CF4 88 g/mole

7 One Mole of Oxygen Gas (O2)
Has a mass of 32 grams Occupies 22.4 liters at STP 273 Kelvins (0oC) One atmosphere ( kPa)(760 mm) Contains 6.02 x 1023 molecules (Avogadro’s Number)

8 Mole of Carbon Dioxide (CO2)
Has a mass of 44 grams Occupies 22.4 liters at STP Contains 6.02 x 1023 molecules

9 One Mole of Nitrogen Gas (N2)
Has a mass of 28 grams Occupies 22.4 liters at STP Contains 6.02 x 1023 molecules

10 Mole of Hydrogen Gas (H2)
Mass Volume at STP Molecules 2.0 grams 22.4 liters 6.02 x 1023

11 Standard Conditions (STP)
Molar Volume Standard Temperature Standard Pressure 22.4 liters/mole 0 oC 273 Kelvins 1 atmosphere kilopascals 760 mm Hg

12 Gas Law Unit Conversions
liters  milliliters milliliters  liters o C  Kelvins Kelvins  o C mm  atm atm  mm atm  kPa kPa  atm Multiply by 1000 Divide by 1000 Add 273 Subtract 273 Divide by 760 Multiply by 760 Multiply by Divide by

13 Charles’ Law At constant pressure, the volume of a gas is directly proportional to its temperature in Kelvins V1 = V2 T T2 As the temperature goes up , the volume goes up 

14 As the pressure goes up , the volume goes down 
Boyle’s Law At constant temperature, the volume of a gas is inversely proportional to the pressure. P1V1 = P2V2 As the pressure goes up , the volume goes down 

15 Combined Gas Law P1V1 = P2V2 T1 T2 Standard Pressure (P) = kPa, 1 atm, or 760 mm Hg Standard Temperature (T) is 273 K Volume (V) is in liters, ml or cm3

16 Charles’ Law Problem A balloon with a volume of 2 liters and a temperature of 25oC is heated to 38oC. What is the new volume? 1. Convert oC to Kelvins = 298 K = 311 K 2. Insert into formula

17 Charles’ Law Solution T1 T2 V1 = 2 liters V2 = Unknown
V1 = V2 T T2 V1 = 2 liters V2 = Unknown T1 = 298 K T2 = 311 K 2 = V2

18 Charles’ Law Solution 2 = V2 298 311 298 V2 = (2) 311 V2 = 622 298
298 V2 = (2) 311 V2 = 622 298 V2 = 2.09 liters

19 Charles’ Law Problem Answer
A balloon with a volume of 2 liters and a temperature of 25oC is heated to 38oC. What is the new volume? V2 = 2.09 liters

20 Boyle’s Law Problem A balloon has a volume of 2.0 liters at
743 mm. The pressure is increased to 2.5 atmospheres (atm). What is the new volume? 1. Convert pressure to the same units 743  760 = .98 atm 2. Insert into formula

21 Boyle’s Law Solution P1V1 = P2V2 P1 = 0.98 atm P2 = 2.5 atm
V1 = 2.0 liters V2 = unknown 0.98 (2.0) = 2.5 V2

22 Boyle’s Law Solution P1V1 = P2V2 0.98 (2.0) = 2.5 V2 V2 = 0.98 (2.0)
V2 = 0.78 liters

23 Boyle’s Law Problem Answer
A balloon has a volume of 2.0 liters at 743 mm. The pressure is increased to 2.5 atmospheres (atm). What is the new volume? V2 = 0.78 liters

24 Combined Gas Law Problem
A balloon has a volume of 2.0 liters at a pressure of 98 kPa and a temperature of 25 oC. What is the volume under standard conditions? 1. Convert 25 oC to Kelvins = 298 K 2. Standard pressure is kPa 3. Standard temperature is 273 K 4. Insert into formula

25 Combined Gas Law Solution
P1V1 = P2V2 T T2 P1 = 98 kPa P2 = kPa V1 = 2.0 liters V2 = unknown T1 = 298 K T2 = 273 K

26 Combined Gas Law Solution
P1V1 = P2V2 T T2 98 (2.0) = V2 (298) (101.32) V2 = (273) (98) (2.0)

27 Combined Gas Law Solution
P1V1 = P2V2 T T2 (298) (101.32) V2 = (273) (98) (2.0) V2 = (98) (2.0) (298) (101.32)

28 Combined Gas Law Solution
P1V1 = P2V2 T1 T2 V2 = (98) (2.0) (298) (101.32) V2 = = liters 30193

29 Combined Gas Law Problem Answer
A balloon has a volume of 2.0 liters at a pressure of 98 kPa and a temperature of 25 oC. What is the volume under standard conditions? V2 = 1.77 liters

30 Combined Gas Law – V2 T1 T2 P1V1T2 = P2V2T1 P2T1 P1V1 = P2V2
P1V1T2 = V2 P2T1

31 The End This presentation was created for the benefit of our students by the Science Department at Howard High School of Technology Please send suggestions and comments to

32 The Ideal Gas Law Chemistry Dr. May

33 Kinetic Molecular Theory
Molecules of an ideal gas Are dimensionless points Are in constant, straight-line motion Have kinetic energy proportional to their absolute temperature Have elastic collisions Exert no attractive or repulsive forces on each other

34 Ideal Gas Law PV = nRT P = pressure in kilopascals (kPa) or atmospheres (atm) V = volume in liters n = moles T = temperature in Kelvins R = universal gas constant

35 Ideal Gas Law: PV = nRT Pressure (P) Volume (V) Moles (n)
Temperature (T) The universal gas constant (R) Atm or kPa Always liters Moles Kelvins ( P in atm) or 8.3 (P in kPa)

36 Universal Gas Constant
R = if P = atmospheres R = 8.3 if P = kilopascals R = PV nT

37 Deriving R for P in Atmospheres
R = PV nT Assume n = 1 mole of gas Standard P = 1 atmosphere Standard V = molar volume = 22.4 liters Standard T = 273 Kelvins

38 R Value When P Is In Atmospheres
R = PV nT R = (1) (22.4) (1) 273 R = atm Liters mole Kelvins

39 Deriving R For P In Kilopascals
R = PV nT Assume n = 1 mole of gas Standard P = kilopascals Standard V = molar volume = 22.4 liters Standard T = 273 Kelvins

40 R Value When P Is In Kilopascals
R = PV nT R = (101.32) (22.4) (1) 273 R = 8.3 kPa Liters mole Kelvins

41 Ideal Gas Law - Pressure
PV = nRT P = nRT V Solves for pressure when moles, temperature, and volume are known

42 Solves for volume when moles, temperature, and pressure are known
Ideal Gas Law - Volume PV = nRT V = nRT P Solves for volume when moles, temperature, and pressure are known

43 Ideal Gas Law - Temperature
PV = nRT T = PV nR Solves for temperature when moles, pressure, and volume are known

44 Solves for moles when pressure, temperature, and volume are known
Ideal Gas Law - Moles PV = nRT n = PV RT Solves for moles when pressure, temperature, and volume are known

45 Ideal Gas Law Problem What is the mass of nitrogen in a 2.3 liter container at 1.2 atmospheres, and 25 oC ? V = 2.3 liters P = 1.2 atmospheres T = 25 oC = 298 Kelvins R = since P is in atms. Find moles (n), then grams

46 Ideal Gas Law Solution (moles)
PV = nRT 1.2 (2.3) = n (0.0821) (298) n = ( 2.3) = moles (0.0821) (298)

47 Ideal Gas Law Solution (Grams)
Grams = moles x molecular weight (MW) Moles = 0.11 Molecular Weight of N2 = 28 g/mole Grams = 0.11 x 28 = 3.1 grams

48 Ideal Gas Law Answer What is the mass of nitrogen in a 2.3 liter container at 1.2 atmospheres, and 25 oC ? The answer is 0.11 moles and 3.1 grams

49 The End This presentation was created for the benefit of our students by the Science Department at Howard High School of Technology Please send suggestions and comments to

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