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Gas Stoichiometry!. ■ equal volumes of gases at the same temperature & pressure contain equal numbers of particles ■ Molar Volume – the volume of 1.0.

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Presentation on theme: "Gas Stoichiometry!. ■ equal volumes of gases at the same temperature & pressure contain equal numbers of particles ■ Molar Volume – the volume of 1.0."— Presentation transcript:

1 Gas Stoichiometry!

2 ■ equal volumes of gases at the same temperature & pressure contain equal numbers of particles ■ Molar Volume – the volume of 1.0 mol of any gas at STP. ■ At STP, one mole of any gas… 1 mol = 6.022 x 10 23 particles = Molar Mass in grams = 22.4 L ■ THIS IS A REVIEW! We have already done this! –Use your dimensional analysis to solve these problems. Avogadro’s Principle

3 Example ■ How many moles of CO 2 gas are in a 2.5 L flask at STP? 2.5 L 1 mol =.11 moles CO 2 22.4 L ■ How many atoms of He are present in a 1.75 L balloon at STP? 1.75 L 1 mole 6.022x10 23 atoms = 4.70x10 23 atoms 22.4 L 1 mole

4 Gas Stoichiometry ■ coefficients in balanced chemical equations represent number of: – moles of each substance – liters of gases, assuming pressure and temp. remain constant Example C 3 H 8 (g)+ 5 O 2 (g) 3 CO 2 (g)+ 4 H 2 O (g) 1 mol 5 mol 3 mol 4 mol 1 L 5 L 3 L 4 L

5 Volume–Mass Problems ■ Mass-volume problems in which we use 22.4 L/mol will only work if the gas you are using is at STP or the gas you are producing will be at STP conditions!!

6 Example – AT STP Given 25 L of oxygen gas, how many grams of water can be produced? O 2 (g) + 2 H 2 (g) 2 H 2 O (l) 25 L O 2 1 mol O 2 2 mol H 2 O 18 g H 2 O 22.4 L O 2 1 mol O 2 1 mol H 2 O = 40. g H 2 O

7 ■ solve for volume, using PV=nRT P = 98.0 kPa T = 20 o C + 273 = 293K n = 1.09 mol SO 2 R = 8.314 kPa·L/mol·K V= nRT P V = (1.09 mol)( 8.314 kPa·L /mol·K)(293K) (98.0 kPa) = 27.1 L SO 2

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