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Topic 1 Quantitative Chemistry. Describe and Apply Mole [2-6] 1 mole = 6.02 x 10 23 – Avogadro’s constant 1 mole is the number of particles contained.

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Presentation on theme: "Topic 1 Quantitative Chemistry. Describe and Apply Mole [2-6] 1 mole = 6.02 x 10 23 – Avogadro’s constant 1 mole is the number of particles contained."— Presentation transcript:

1 Topic 1 Quantitative Chemistry

2 Describe and Apply Mole [2-6] 1 mole = 6.02 x 10 23 – Avogadro’s constant 1 mole is the number of particles contained in exactly 12 g of Carbon-12 Applied to all particles: atoms, ions, molecules, formula units

3 “Representative Particles”

4 Mole problems 1)How many atoms are in 5.59 moles of S? 2)What is the mass of one atom of gold? 3)How many atoms are contained in 0.10 mole of C 2 H 4 ? 4)How many atoms are present in 36 molecules of C 6 H 2 O 6 ? 5)How many moles of hydrogen atoms are in 0.50 mole water? 6)How many chloride ions are in 0.30 moles of gold(III) chloride? 7)Exercises 1-4 page 6

5 Distinguish between atomic, molecular, and formula mass Atomic mass → 1 mole element Molecular mass → 1 mole molecules – Covalent compound Formula mass → 1 mole formula units – Ionic compound

6 Define empirical & molecular formula [7-9] Percent composition = proportion by mass of each element in compound converted to percent Empirical formula = simplest whole number ratio of atoms in a compound Molecular formula = actual number of atoms in a molecule, often multiple of empirical formula

7 Determine empirical & molecular formulas [7-9] Steps for Determining an Empirical Formula Step 1 If you have masses go onto step 2. If you have %. Assume the mass to be 100g, so the % becomes grams. Step 2 Determine the moles of each element. Step 3 Determine the mole ratio by dividing each elements number of moles by the smallest value from step 2. Step 4 Double, triple … to get an integer if they are not all whole numbers

8 Determine empirical & molecular formulas [7-9] Additional Steps for Determining Molecular Formula The question should have included a molecular mass. Step 5 Determine the mass of your empirical formula Step 6 Divide the given molecular mass by your E.F. mass in step 5 Step 7 Multiply the atoms in the empirical formula by this number

9 Determine empirical and molecular formulas [7-9] Exercises 7-9 page 9

10 Determine empirical & molecular formulas Steps Determining Formula with Combustion Analysis Step 1 Determine grams carbon in CO 2 and grams hydrogen in H 2 O. C: __g CO 2 x (12.011 g / 44.0098 g) = __g C H: __g H 2 O x (2.0158 g / 18.0152 g) = __g H Step 2 Subtract the mass of C and H from the sample mass to find the mass of O Step 3 Convert grams of C, H and O to their respective amount of moles. You can take it from here.

11 Determine empirical & molecular formulas Combustion analysis example 6.00 g of an organic compound(contains C, H, and O)form 8.80 g of CO 2 and 3.60 g of H 2 O when it undergoes complete combustion. What is its empirical formula? If the molecular mass is 90 g/mole, what is the molecular formula?

12 chemical equations [10-11] 1)Exercises 11 and 12 page 11

13 Apply State Symbols [10-11] (s) = solid (l) = liquid (aq)= aqueous solution (g) = gas Note-not many chemicals are pure liquids, water, bromine, mercury

14 Stoichiometry: Basic [11-12] Stoichiometry steps 1)Balance the equation 2)Convert units of given to moles 3)Find moles of unknown using mole ratio 4)Convert moles of unknown to desired units

15 Stoichiometry: Basic [11-12] Remember these conversions: Mass to mole Gas volume to mole Particles to mole

16 Stoichiometry: Basic [11-12] Exercise 13 page 13 Exercises 21 and 22 page 24

17 Stoichiometry: Theoretical Yield [13] Stoichiometry calculate the most product that can be made from the amount of reactant under perfect and complete conditions. – Therefore the theoretical yield Exercise 14 page 13

18 Stoichiometry: Limiting reactant [14] and percent yield [15] Exercises 15 and 16 page 16

19 Stoichiometry: excess reactant [14] Calculate the amount of excess reactant in exercises 15 and 16 page 16

20 Stoichiometry: Solutions [28-33] You must be able to calculate concentration of solutions Molarity (M) = moles solute dm 3 solution Remember if you know moles of a substance, you can calculate mass and visa versa dm 3 = L cm 3 = mL

21 Stoichiometry: Solutions [28-33] Exercises 28-30 page 30

22 Stoichiometry: Solutions [28-33] 1)500 mL of 0.500 M NaCl is added to 500 mL of 1.00 M Na 2 CO 3. Calculate the final concentration of Na + ions. 2)1.86 g of lead (II) carbonate is added to 50.0 mL (an excess) of nitric acid. What is the concentration of lead (II) nitrate in the resulting solution?

23 Stoichiometry: Solutions [28-33] Exercises 31-33 page 33

24 States of Matter [17]

25 Kelvin temperature scale [17] Temperature in Kelvin is directly proportional to kinetic energy – Higher K, higher KE K = °C + 273.15 Absolute zero = 0 K

26 Changes of state [17-18]

27

28 Gas Laws [24-28] Avogadro’s Law: Equal number of moles of any gas at the same temperature and pressure will occupy equal volume Dalton’s Law: The sum of partial pressures of gases in a mixture will equal the total pressure Graham’s Law: The smaller the molar mass of a gas, the faster it will travel

29 Gas Laws [24-28] CombinedBoyle’s Charles’Gay-Lussac

30 Gas Laws [24-28] Ideal gas law: PV = nRT The ideal gas law can be rearranged to solve for molar mass of a gas and density of a gas

31 Gas Laws [24-28] Exercises 23-24 page 27

32 Gas Laws [24-28] Exercises 25-27 page 28

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