The Gas Laws

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 1023 or 602,000,000,000,000,000,000,000

4. 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 Diatomic Gas Elements

5. 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 Inert Gas Elements

6. 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 Other Important Gases

7. One Mole of Oxygen Gas (O2) • Has a mass of 32 grams • Occupies 22.4 liters at STP • 273 Kelvins (0oC) • One atmosphere (101.32 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. Mass Volume at STP Molecules 2.0 grams 22.4 liters 6.02 x 1023 Mole of Hydrogen Gas (H2)

11. Molar Volume Standard Temperature Standard Pressure 22.4 liters/mole 0 oC 273 Kelvins 1 atmosphere 101.32 kilopascals 760 mm Hg Standard Conditions (STP)

12. 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 101.32 Divide by 101.32 Gas Law Unit Conversions

13. Charles’ Law • At constant pressure, the volume of a gas is directly proportional to its temperature in Kelvins V1 = V2 T1 T2 As the temperature goes up, the volume goes up

14. 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) = 101.32 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 25 + 273 = 298 K 38 + 273 = 311 K 2. Insert into formula

17. Charles’ Law Solution V1 = V2 T1 T2 V1 = 2 liters V2 = Unknown T1 = 298 K T2 = 311 K 2 = V2 298 311

18. Charles’ Law Solution 2 = V2 298 311 298 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) 2.5 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 25 + 273 = 298 K 2. Standard pressure is 101.32 kPa 3. Standard temperature is 273 K 4. Insert into formula

25. Combined Gas Law Solution P1V1 = P2V2 T1 T2 P1 = 98 kPa P2 = 101.32 kPa V1 = 2.0 liters V2 = unknown T1 = 298 K T2 = 273 K

26. Combined Gas Law Solution P1V1 = P2V2 T1 T2 98 (2.0) = 101.32 V2 298 273 (298) (101.32) V2 = (273) (98) (2.0)

27. Combined Gas Law Solution P1V1 = P2V2 T1 T2 (298) (101.32) V2 = (273) (98) (2.0) V2= 273 (98) (2.0) (298) (101.32)

28. Combined Gas Law Solution P1V1 = P2V2 T1 T2 V2= 273 (98) (2.0) (298) (101.32) V2=53508=1.77 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 P1V1 = P2V2 T1 T2 P1V1T2 = P2V2T1 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 rmay@nccvt.k12.de.us

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. Pressure (P) Volume (V) Moles (n) Temperature (T) The universal gas constant (R) Atm or kPa Always liters Moles Kelvins 0.0821 ( P in atm) or 8.3 (P in kPa) Ideal Gas Law: PV = nRT

36. Universal Gas Constant R = 0.0821 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 = 1atmosphere 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 = 0.0821atm Liters mole Kelvins

39. Deriving R For P In Kilopascals R = PV nT Assume n = 1 mole of gas Standard P = 101.32 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 = 8.3kPa Liters mole Kelvins

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

42. 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. 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 = 0.0821 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 = 1.2 ( 2.3) = 0.11 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 rmay@nccvt.k12.de.us