Presentation is loading. Please wait.

Presentation is loading. Please wait.

Read for Tuesday Read for Tuesday Chapter 4: Sections 4-6 Chapter 4: Sections 4-6 HOMEWORK – DUE Thursday 9/10/15 HOMEWORK – DUE Thursday 9/10/15 HW-BW.

Published byDelphia Price Modified over 9 years ago

Similar presentations

Presentation on theme: "Read for Tuesday Read for Tuesday Chapter 4: Sections 4-6 Chapter 4: Sections 4-6 HOMEWORK – DUE Thursday 9/10/15 HOMEWORK – DUE Thursday 9/10/15 HW-BW."— Presentation transcript:

1 Read for Tuesday Read for Tuesday Chapter 4: Sections 4-6 Chapter 4: Sections 4-6 HOMEWORK – DUE Thursday 9/10/15 HOMEWORK – DUE Thursday 9/10/15 HW-BW 3.2 (Bookwork) CH 3 #’s 41, 45, 48, 56-61 all, 68, 70, 72, 73, 78, 79, 85, 88, 95, 96, 104, 119, 124 HW-BW 3.2 (Bookwork) CH 3 #’s 41, 45, 48, 56-61 all, 68, 70, 72, 73, 78, 79, 85, 88, 95, 96, 104, 119, 124 HW-WS 4 (Worksheet) (from course website) HW-WS 4 (Worksheet) (from course website) HOMEWORK – DUE Tuesday 9/15/15 HOMEWORK – DUE Tuesday 9/15/15 HW-BW 4.1 (Bookwork) CH 4 #’s 3, 7, 9, 16, 17-31 odd, 42, 44, 46, 56, 62, 64, 66, 70, 72, 149 HW-BW 4.1 (Bookwork) CH 4 #’s 3, 7, 9, 16, 17-31 odd, 42, 44, 46, 56, 62, 64, 66, 70, 72, 149 HW-WS 5 (Worksheet) (from course website) HW-WS 5 (Worksheet) (from course website) HOMEWORK – DUE Thursday 9/17/15 HOMEWORK – DUE Thursday 9/17/15 HW-BW 4.2 (Bookwork) CH 4 #’s 78-81 all, 83-89 odd, 90, 93, 95, 104-112 even, 116, 156 HW-BW 4.2 (Bookwork) CH 4 #’s 78-81 all, 83-89 odd, 90, 93, 95, 104-112 even, 116, 156 HW-WS 6 (Worksheet) (from course website) HW-WS 6 (Worksheet) (from course website) Lab next week – EXP 3 Lab next week – EXP 3 EXAM 1 IS THURSDAY EXAM 1 IS THURSDAY

2 The mole What is the mass of 7.57x10 24 atoms of sodium? How many hydrogen atoms in 63.490 g of barium chloride dihydrate? What is the molar mass of a compound when 6.21x10 21 molecules has a mass of 5.83g

3 Empirical Formulae The simplest whole number ratio of atoms in a molecule Example: molecular formula = C 9 H 18 O 3 empirical formula = C 3 H 6 O Example: molecular formula = C 16 H 32 O 2 N 4 empirical formula = C 8 H 16 ON 2 Example: molecular formula = KMnO 4 empirical formula = KMnO 4

4 Calculating Empirical Formulae What is the empirical formula of a compound that is made up of 10.95g C, 29.25g O, and 34.75g F? Step 1: convert each mass to MOLES Step 2: divide EACH by the smallest!!

5 Calculating Empirical Formulae What is the empirical formula of a compound that is made up of 10.95g C, 29.25g O, and 34.75g F? So we have 1 mol C, 2 mol O, and 2 mol F Step 3: if each is a whole number, write the empirical formula CO 2 F 2

6 Calculating Empirical Formulae What is the empirical formula of a compound that is made up of 32.79% Na, 13.02% Al, and 54.19% F? Step 1: assume 100 g THEN convert each mass to MOLES Step 2: divide EACH by the smallest!!

7 Calculating Empirical Formulae What is the empirical formula of a compound that is made up of 32.79% Na, 13.02% Al, and 54.19% F? Step 1: assume 100 g THEN convert each mass to MOLES Step 2: divide EACH by the smallest!!

8 Calculating Empirical Formulae So we have 3 mol Na, 1 mol Al, and 6 mol F Step 3: if each is a whole number, write the empirical formula Na 3 AlF 6 What is the empirical formula of a compound that is made up of 32.79% Na, 13.02% Al, and 54.19% F?

9 Calculating Empirical Formulae Step 1: assume 100 g THEN convert each mass to MOLES Step 2: divide EACH by the smallest!! What is the empirical formula of a compound that is made up of 62.1% C, 5.21% H, 12.1% N, and 20.7% O?

10 Calculating Empirical Formulae So we have 6 mol C, 6 mol H, 1 mol N, and 1.5 mol O Step 3: if each is a whole number, write the empirical formula C 12 H 12 N 2 O 3 What is the empirical formula of a compound that is made up of 62.1% C, 5.21% H, 12.1% N, and 20.7% O? O 1.5 x 2 = 3 C 6 x 2 = 12 H 6 x 2 = 12 N 1 x 2 = 2 C 6 H 6 NO 1.5

11 Step 1: assume 100 g THEN convert each mass to MOLES Step 2: divide EACH by the smallest!! What is the empirical formula of a compound made up of 74.01% C, 5.23% H, and 20.76% O?

12 So we have 4.75 mol C, 4 mol H, and 1 mol O Step 3: If all of the subscripts are NOT whole numbers, then multiply EACH ELEMENT by the smallest number that will make all of them whole numbers C 4.75 H 4 O What is the empirical formula of a compound made up of 74.01% C, 5.23% H, and 20.76% O? multiply EACH of the subscripts by 4! C 4.75 x 4 = 19 H 4 x 4 = 16 O 1 x 4 = 4 C 19 H 16 O 4

13 Molecular Formulae: The Next Step What is the empirical formula of: C6H9N3C6H9N3 C2H3NC2H3N ratio = 3 to 1 What are the molar masses of the molecular and empirical formulae? C 6 H 9 N 3 = 123.18 g/mol C 2 H 3 N = 41.06 g/mol ratio = 3 to 1

14 Molecular Formulae: The Next Step Molecular formula and empirical formula will always have the same ratio as the molecular mass and the empirical mass! If a compound has a molar mass of 78.1150 g/mol and an empirical formula of CH, what is the molecular formula? empirical mass = 13.02 g/mol mass ratio = 6 to 1 formula ratio = 6 to 1 6(CH)  C 6 H 6 molecular formula = C 6 H 6

15 Caffeine is my life blood! Give the empirical and molecular formulae based on: 40.09g C, 4.172g H, 23.41g N, and 13.37g O. The molar mass of caffeine is 194.19 g/mol Molecular Formulae: The Next Step C4H5N2OC4H5N2O

16 C4H5N2OC4H5N2O Caffeine is my life blood! What is the empirical formulae based on: 40.09g C, 4.172g H, 23.41g N, and 13.37g O. Molecular Formulae: The Next Step C 4 H 5 N 2 O = 97.11 g/mol mass ratio = 2 to 1 formula ratio = 2 to 1 2(C 4 H 5 N 2 O)  C 8 H 10 N 4 O 2 molecular formula = C 8 H 10 N 4 O 2 If the molar mass of caffeine is 194.19 g/mol, what is its molecular formula?

17 Give the empirical and molecular formulae for a compound based on: 6.85g C, 0.432g H, 3.41g O, and 11.4g Br. The molar mass of the compound is 929.88 g/mol Molecular Formulae: The Next Step C 8 H 6 O 3 Br 2 ~ 4 mol C ~ 3 mol H ~ 1.5 mol O 1 mol Br x2

18 C 8 H 6 O 3 Br 2 = 309.96 g/molC 8 H 6 O 3 Br 2 Molecular Formulae: The Next Step mass ratio = 3 to 1 formula ratio = 3 to 1 3(C 8 H 6 O 3 Br 2 )  C 24 H 18 O 9 Br 6 molecular formula = C 24 H 18 O 9 Br 6 Give the empirical and molecular formulae for a compound based on: 6.85g C, 0.432g H, 3.41g O, and 11.4g Br. The molar mass of the compound is 929.88 g/mol

19 You burn 2769. grams of an unknown hydrocarbon and collect 8505 grams of CO 2(g) and 3918 grams of H 2 O (g). a)What is the empirical formula of the hydrocarbon? b) If the molar mass of the hydrocarbon is 114.26 g/mol, what is the molecular formula?

20 You burn 2769. grams of an unknown hydrocarbon and collect 8505 grams of CO 2(g) and 3918 grams of H 2 O (g). empirical formula = C 4 H 9

21 You burn 2769. grams of an unknown hydrocarbon and collect 8505 grams of CO 2(g) and 3918 grams of H 2 O (g). b)If the molar mass of the hydrocarbon is 114.26 g/mol, what is the molecular formula? empirical formula = C 4 H 9 = 57.13 g/mol 2(C 4 H 9 )  C 8 H 18 molecular formula = C 8 H 18

22 You burn 1116 g of an unknown hydrocarbon derivative (C x H y O z ) and collect 2617 g of CO 2(g) and 401 g of H 2 O (g). a)What is the empirical formula of this compound? b) If the molar mass of the compound is 300 g/mol, what is the molecular formula?

23 You burn 1116 g of an unknown hydrocarbon derivative (C x H y O z ) and collect 2617 g of CO 2(g) and 401 g of H 2 O (g). Where does all of the carbon in the compound go? Where does all of the carbon in the CO 2 come from? Allows us to use mol-to-mol C/CO 2 Where does all of the hydrogen in the compound go? Where does all of the hydrogen in the H 2 O come from? Allows us to use mol-to-mol H/H 2 O Where does all of the oxygen in the compound go? CANNOT use a mol-to-mol ratio for oxygen CO 2 compound H2OH2O everywhere

24 You burn 1116 g of an unknown hydrocarbon derivative (C x H y O z ) and collect 2617 g of CO 2(g) and 401 g of H 2 O (g). C8H6O3C8H6O3

25 b)If the molar mass of the compound is 300 g/mol, what is the molecular formula? empirical formula = C 8 H 6 O 3 = 150.14 g/mol 2(C 8 H 6 O 3 )  C 16 H 12 O 6 molecular formula = C 16 H 12 O 6

26 ACME Tricycle Company Tricycles are made of 1 frame, 2 pedals, and 3 wheels A shipment comes in consisting of 1387 f, 2744 p, 4188 w. How many tricycles can be built?

27 The smallest amount of product is how much can actually be made! (only 1372 tricycles can be made in this case) The starting material that you run out of is the limiting reactant (pedals in this case) The starting material that you have left over is the excess reactant (frames and wheels in this case) ACME Tricycle Company You KNOW you are doing a limiting reactant problem when you have amounts of more than one reactant (starting material)

28 3 H 2(g) + N 2(g)  2 NH 3(g) Hydrogen gas and nitrogen gas combine to form ammonia gas (NH 3 ). If you start with 18 moles of hydrogen and 11 moles of nitrogen, how many moles of ammonia can be made? Limiting Reactants H 2(g) + N 2(g)  NH 3(g) H 2(g) + N 2(g)  2 NH 3(g) Only 12 moles of NH 3 can be made H 2 is the limiting reactant (you run out of it first) N 2 is the excess reactant (you have more than you need)

29 + 3 H 2 + N2N2N2N2 2 NH 3

30 + 3 H 2 + N2N2N2N2 2 NH 3 L.R. (ran out) E.R. (left over)

31 3 H 2(g) + N 2(g)  2 NH 3(g) Limiting Reactants Started with 18 moles of hydrogen and 11 moles of nitrogen. Theoretical Yield

32 + H2H2H2H2+ N2N2N2N2 NH 3 L.R. (ran out) E.R. (left over) 0 mol H 2 left5 mol N 2 left12 mol NH 3 made

33 31.89 g of potassium sulfate is reacted with 25.00 g of lead (II) acetate. What are the masses of all reactants and products after the reaction? K 2 SO 4(aq) + Pb(C 2 H 3 O 2 ) 2(aq)  2 KC 2 H 3 O 2(aq) + PbSO 4(s) 174.27 g/mol325.3 g/mol98.15 g/mol303.3 g/mol limiting reactanttheoretical yield of KC 2 H 3 O 2 theoretical yield = 15.09g KC 2 H 3 O 2 Pb(C 2 H 3 O 2 ) 2 is the L.R. (0 left) K 2 SO 4(aq) + Pb(C 2 H 3 O 2 ) 2(aq)  2 KC 2 H 3 O 2(aq) + PbSO 4(s)

34 (Hint: start with the given amount of the limiting reactant.) Now calculate how much of the other product(s) will be formed. 31.89 g of potassium sulfate is reacted with 25.00 g of lead (II) acetate. What are the masses of all reactants and products after the reaction? K 2 SO 4(aq) + Pb(C 2 H 3 O 2 ) 2(aq)  2 KC 2 H 3 O 2(aq) + PbSO 4(s) 174.27 g/mol325.3 g/mol98.15 g/mol303.3 g/mol

35 23.31 g 15.09 g 31.89 g of potassium sulfate is reacted with 25.00 g of lead (II) acetate. What are the masses of all reactants and products after the reaction? reactantsproducts K 2 SO 4 = 18.49 g Pb(C 2 H 3 O 2 ) 2 = 0 g (L.R.) KC 2 H 3 O 2 = PbSO 4 = Mass must be the same before and after the reaction!! mass before reaction  31.89 + 25.00 = 56.89 g mass after reaction  15.09 + 23.31 = 38.40 g difference will be the mass of excess reactant left over = 18.49 g K 2 SO 4(aq) + Pb(C 2 H 3 O 2 ) 2(aq)  2 KC 2 H 3 O 2(aq) + PbSO 4(s) 31.89 g K 2 SO 4 (STARTED) – 13.39 g K 2 SO 4 (USED) = 18.50 g K 2 SO 4 (LEFT)

36 2 CrCl 3(aq) + 3 Pb(NO 3 ) 2(aq)  2 Cr(NO 3 ) 3(aq) + 3 PbCl 2(s) theoretical yield = 19.66g PbCl 2(s) Pb(NO 3 ) 2 is the L.R. (0 left) 14.71 g of chromium (III) chloride is added to 23.41 g of lead (II) nitrate. How much of all reactants and products are present after the reaction? 2 CrCl 3(aq) + 3 Pb(NO 3 ) 2(aq)  2 Cr(NO 3 ) 3(aq) + 3 PbCl 2(s) 158.35 g/mol331.2 g/mol238.03 g/mol278.1 g/mol

37 14.71 g of chromium (III) chloride is added to 23.41 g of lead (II) nitrate. How much of all reactants and products are present after the reaction? (Hint: start with the given amount of the limiting reactant.) Now calculate how much of the other product(s) will be formed. 2 CrCl 3(aq) + 3 Pb(NO 3 ) 2(aq)  2 Cr(NO 3 ) 3(aq) + 3 PbCl 2(s) 158.35 g/mol331.2 g/mol238.03 g/mol278.1 g/mol

38 14.71 g of chromium (III) chloride is added to 23.41 g of lead (II) nitrate. How much of all reactants and products are present after the reaction? 19.66 g 11.22 g reactantsproducts CrCl 3 = 7.24 g Pb(NO 3 ) 2 = 0 g (L.R.) Cr(NO 3 ) 3 = 11.22 g PbCl 2 = 19.66 g Mass must be the same before and after the reaction!! mass before reaction  14.71 + 23.41 = 38.12 g mass after reaction  11.22 + 19.66 = 30.88 g difference will be the mass of excess reactant left over = 7.24 g 2 CrCl 3(aq) + 3 Pb(NO 3 ) 2(aq)  2 Cr(NO 3 ) 3(aq) + 3 PbCl 2(s) 14.71 g CrCl 3 (STARTED) – 7.462 g CrCl 3 (USED) = 7.24 g CrCl 3 (LEFT)

39 5.0422 g of ammonium phosphate is reacted with 4.8357 g of calcium sulfide. What is the mass (grams) of solid formed after the reaction is complete? 2 (NH 4 ) 3 PO 4(aq) + 3 CaS (aq)  3 (NH 4 ) 2 S (aq) + Ca 3 (PO 4 ) 2(s) 149.12 g/mol72.15 g/mol68.17 g/mol310.18 g/mol limiting reactant theoretical yield of Ca 3 (PO 4 ) 2

40 5.0422 g of ammonium phosphate is reacted with 4.8357 g of calcium sulfide. What is the mass of solid formed after the reaction is complete? If the actual yield was 4.9898 grams, what was the percent yield for this reaction? theoretical yield of KC 2 H 3 O 2

Download ppt "Read for Tuesday Read for Tuesday Chapter 4: Sections 4-6 Chapter 4: Sections 4-6 HOMEWORK – DUE Thursday 9/10/15 HOMEWORK – DUE Thursday 9/10/15 HW-BW."

Similar presentations

STOICHIOMETRY Study of the amount of substances consumed and produced in a chemical reaction.

STOICHIOMETRY Study of the amount of substances consumed and produced in a chemical reaction.
CH 3: Stoichiometry Moles.

CH 3: Stoichiometry Moles.
Second Exam: Friday February 15 Chapters 3 and 4. Please note that there is a class at 1 pm so you will need to finish by 12:55 pm. Electronic Homework.

Second Exam: Friday February 15 Chapters 3 and 4. Please note that there is a class at 1 pm so you will need to finish by 12:55 pm. Electronic Homework.
Chapter 41 Chemical Equations and Stoichiometry Chapter 4.

Chapter 41 Chemical Equations and Stoichiometry Chapter 4.
CHAPTER 3 STOICHIOMETRY. ATOMIC MASS Atoms are so small, it is difficult to discuss how much they weigh in grams. Use atomic mass units. an atomic mass.

CHAPTER 3 STOICHIOMETRY. ATOMIC MASS Atoms are so small, it is difficult to discuss how much they weigh in grams. Use atomic mass units. an atomic mass.
Chapter 3.  Reactants are left of the arrow  Products are right of the arrow  The symbol  is placed above the arrow to indicate that the rxn is being.

Chapter 3.  Reactants are left of the arrow  Products are right of the arrow  The symbol  is placed above the arrow to indicate that the rxn is being.
Happy Groundhog Day!! Read for NEXT Wednesday: Read for NEXT Wednesday: Chapter 4: Sections 4-6 Chapter 4: Sections 4-6 HOMEWORK – DUE Monday 2/9/15 HOMEWORK.

Happy Groundhog Day!! Read for NEXT Wednesday: Read for NEXT Wednesday: Chapter 4: Sections 4-6 Chapter 4: Sections 4-6 HOMEWORK – DUE Monday 2/9/15 HOMEWORK.
Stoichiometry Chapter 3. Atomic Mass Atoms are so small, it is difficult to weigh in grams (Use atomic mass units) Atomic mass is a weighted average of.

Stoichiometry Chapter 3. Atomic Mass Atoms are so small, it is difficult to weigh in grams (Use atomic mass units) Atomic mass is a weighted average of.
Atomic Mass Atoms are so small, it is difficult to discuss how much they weigh in grams. Use atomic mass units. an atomic mass unit (amu) is one twelfth.

Atomic Mass Atoms are so small, it is difficult to discuss how much they weigh in grams. Use atomic mass units. an atomic mass unit (amu) is one twelfth.
Section Percent Composition and Chemical Formulas

Section Percent Composition and Chemical Formulas
C n H m + (n+ )O 2(g) n CO 2(g) + H 2 O (g) m 2 m 2 Fig. 3.4.

C n H m + (n+ )O 2(g) n CO 2(g) + H 2 O (g) m 2 m 2 Fig. 3.4.
Chemistry Notes Empirical & Molecular Formulas. Empirical Formula The empirical formula gives you the lowest, whole number ratio of elements in the compound.

Chemistry Notes Empirical & Molecular Formulas. Empirical Formula The empirical formula gives you the lowest, whole number ratio of elements in the compound.
Homework Check Find the percent composition of the following: 1. A compound with 222.6 g of Na and 77.4 g of O 2. Ammonium Nitrate (NH 4 NO 3 ) 3. Ca(C.

Homework Check Find the percent composition of the following: 1. A compound with g of Na and 77.4 g of O 2. Ammonium Nitrate (NH 4 NO 3 ) 3. Ca(C.
Percentage Composition

Percentage Composition
Determining Chemical Formulas

Determining Chemical Formulas
Q3U2 :Theoretical Yield, Mass Percents, and Empirical Formulas.

Q3U2 :Theoretical Yield, Mass Percents, and Empirical Formulas.
Chapter 3 Percent Compositions and Empirical Formulas

Chapter 3 Percent Compositions and Empirical Formulas
Mass Conservation in Chemical Reactions Mass and atoms are conserved in every chemical reaction. Molecules, formula units, moles and volumes are not always.

Mass Conservation in Chemical Reactions Mass and atoms are conserved in every chemical reaction. Molecules, formula units, moles and volumes are not always.
  Proportion or ratio of each element in a chemical compound  Expressed as grams of element per 100 grams of chemical compound What is percent composition?

  Proportion or ratio of each element in a chemical compound  Expressed as grams of element per 100 grams of chemical compound What is percent composition?
CHAPTER 3b Stoichiometry.

CHAPTER 3b Stoichiometry.

Similar presentations

Ads by Google