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Chapter 11: Properties of Gases Chemistry: The Molecular Nature of Matter, 6E Brady/Jespersen/Hyslop.

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Presentation on theme: "Chapter 11: Properties of Gases Chemistry: The Molecular Nature of Matter, 6E Brady/Jespersen/Hyslop."— Presentation transcript:

1 Chapter 11: Properties of Gases Chemistry: The Molecular Nature of Matter, 6E Brady/Jespersen/Hyslop

2 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 2 Properties of Common Gases Four Physical Properties of Gases  Inter-related 1.Pressure (P) 2.Volume (V) 3.Temperature (T) 4.Amount = moles (n)

3 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 3 Pressure, Its Measurement and Units  Pressure is force per unit area  Earth exerts gravitational force on everything with mass near it  Weight  Measure of gravitational force that earth exerts on objects with mass

4 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 4 Ways to Measure Pressure  Atmospheric Pressure  Resulting force per unit area  When earth's gravity acts on molecules in air  Pressure due to air molecules colliding with object  Barometer  Instrument used to measure atmospheric pressure  Toricelli Barometer

5 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 5 Units of Pressure Pascal = Pa  SI unit for Pressure  Very small  1atm  101,325 Pa = 101 kPa  1atm  1.013 Bar = 1013 mBar  1 atm too big for most lab work 1 atm  760 mm Hg At sea level 1 torr = 1 mm Hg

6 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 6 Gases Laws 1. Boyle’s Law  Studied relationship between P and V  Work done at constant T as well as constant number of moles (n)  As V , P  and vice versa So P 1 V 1 = P 2 V 2

7 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 7 2. Charles’s Law  Charles worked on relationship of how V changes with T  Kept P and n constant  Showed V  as T   So

8 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 8 3. Gay-Lussac’s Law  Worked on relationship between pressure and temperature  Volume (V) and number of moles (n) are constant  P  as T   This is why we don’t heat canned foods on a campfire without opening them!  Showed that gas pressure is directly proportional to absolute temper ature  So T (K) P Low T, Low P High T, High P

9 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 9 Combined Gas Law  Ratio  Constant for fixed amount of gas (n)  for fixed amount (moles)  OR can equate 2 sets of conditions to give combined gas law

10 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 10 Combined Gas Law Used for calculating effects of changing conditions  T in Kelvin  P and V any units, as long as units cancel  Ex1. If a sample of air occupies 500. mL at STP*, what is the volume at 85 °C and 560 torr? *Standard Temperature (273.15K) and Pressure (1 atm) 890 mL

11 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 11 Ex.2. Using Combined Gas Law  What will be the final pressure of a sample of nitrogen gas with a volume of 950 m 3 at 745 torr and 25.0 °C if it is heated to 60.0 °C and given a final volume of 1150 m 3 ?  Solution :-  So P 1 = 745 torrP 2 = ? V 1 = 950 m 3 V 2 = 1150 m 3 T 1 = 25.0 °C + 273.15 = 298.15 K T 2 = 60.0 °C + 273.15 = 333.15 K P 2 = 688 torr

12 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 12 4. Avogadro’s Principle  When measured at same T and P, equal V's of gas contain equal number of moles  Volume of a gas is directly proportional to its number of moles, n  V  n(at constant P and T) H 2 (g) + Cl 2 (g)  2 HCl (g) Coefficients112 Volumes112 Molecules112 (Avogadro's Principle) Moles112

13 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 13 V and n (Avogadro's Principle)  For ideal gas at constant T and P  V is directly proportional to n  KT Gases account for this  As  n (number gas particles), at same T  Since P constant  Must  V

14 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 14 Standard Molar Volume  Volume of 1 mole gas must be identical for all gases under same P and T  Standard Conditions of Temperature and Pressure — STP  STP = 1 atm and 273.15 K (0.0°C)  Under these conditions  1 mole gas occupies V = 22.4 L  22.4 L  standard molar volume

15 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 15 Learning Check: How many liters of N 2 (g) at 1.00 atm and 25.0 °C are produced by the decomposition of 150. g of NaN 3 ? 2NaN 3 (s)  2Na (s) + 3N 2 (g)

16 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 16 Ideal Gas Law  With Combined Gas Law we saw that  With Avogadro’s results we see that this is modified to  Where R = a new constant = Universal Gas constant

17 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 17 Ideal Gas Law PV = nRT  Equation of state of a gas:  If we know 3 of these variables, then we can calculate 4 th  Can define state of the gas by defining 3 of these values Ideal Gas  Hypothetical gas that obeys Ideal Gas Law relationship over all ranges of T, V, n and P  As T  and P , real gases  ideal gases

18 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 18 What is the value of R?  Plug in values of T, V, n and P for 1 mole of gas at STP (1 atm and 0.0°C)  T = 0.0°C = 273.15 K  P = 1 atm  V = 22.4 L  n = 1 mol R = 0.082057 L·atm·mol  1 ·K  1

19 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E Learning Check: PV = nRT How many liters of N 2 (g) at 1.00 atm and 25.0 °C are produced by the decomposition of 150. g of NaN 3 ? 2NaN 3 (s)  2Na(s) + 3N 2 (g) V = ? V = nRT/P V=84.62L P = 1 atm T = 25C + 273.15 = 298.15 K n = 3.461 mol N 2

20 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E Your Turn! Solid CaCO 2 decomposes to solid CaO and CO 2 when heated. What is the pressure, in atm, of CO 2 in a 50.0 L container at 35 o C when 75.0 g of calcium carbonate decomposes? A. 0.043 atm B. 0.010 atm C. 0.38 atm D. 0.08 atm E. 38 atm 20

21 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E Your Turn! - Solution 21

22 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 22 Which Gas Law to Use?  Which Gas Law to Use in Calculations?  If you know Ideal Gas Law, you can get all the rest Gas Law Problems Use Combined Gas Law Use Ideal Gas Law Amount of gas given or asked for in moles or g Amount of gas remains constant or not mentioned

23 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 23 Stoichiometry of Reactions Between Gases  Can use stoichiometric coefficients in equations to relate volumes of gases  Provided T and P are constant  Volume  molesV  n Ex. 8. Methane burns according to the following equation. CH 4 (g) + 2 O 2 (g)  CO 2 (g) + 2 H 2 O (g) 1 vol2 vol1 vol2 vol

24 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E 24 Ex. 3  The combustion of 4.50 L of CH 4 consumes how many liters of O 2 ? (Both volumes measured at STP.)  P and T are all constant so just look at ratio of stoichiometric coefficients = 9.00 L O 2

25 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E Your Turn! 2Na(s) + 2H 2 O(l ) → 2NaOH(aq) + H 2 (g ) How many grams of sodium are required to produce 20.0 L of hydrogen gas at 25.0 C, and 750 torr ? A. 18.6 g B. 57.0 g C. 61.3 g D. 9.62 g E. 37.1 g 25

26 Brady/Jespersen/Hyslop Chemistry: The Molecular Nature of Matter, 6E Your Turn! - Solution  Moles of H 2 produced:  Grams of sodium required: 26

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