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Chapter 8 Chemical Quantities Atomic Mass and Formula Mass Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings.

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Presentation on theme: "Chapter 8 Chemical Quantities Atomic Mass and Formula Mass Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings."— Presentation transcript:

1 Chapter 8 Chemical Quantities Atomic Mass and Formula Mass Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

2 Chapter 8 Slide 2 of 75 Atomic Mass Atomic mass is the Mass of a single atom in atomic mass units (amu). Mass of an atom compared to a 12 C atom. Number below the symbol of an element. (the average atomic mass)

3 Chapter 8 Slide 3 of 75 Periodic Table and Atomic Mass Ag has atomic mass = 107.9 amu C has atomic mass = 12.01 amu S has atomic mass = 32.07 amu

4 Chapter 8 Slide 4 of 75 Atomic Mass Factors The atomic mass Can be written as an equality. Example: 1 P atom = 30.97 amu Can be written as two conversion factors. Example: 1 P atom and 30.97 amu 30.97 amu 1 P atom

5 Chapter 8 Slide 5 of 75 Uses of Atomic Mass Factors The atomic mass factors are used to convert A specific number of atoms to mass (amu). An amount in amu to number of atoms.

6 Chapter 8 Slide 6 of 75 Using Atomic Mass Factors 1. What is the mass in amu of 75 P atoms? 75 P atoms x 30.97 amu = 2323 amu (2.323 x10 3 amu) 1 P atom 2. How many Cu atoms have a mass of 4.500 x 10 5 amu? 4.500 x 10 5 amu x 1 Cu atom = 7081 Cu atoms 63.55 amu

7 Chapter 8 Slide 7 of 75 Learning Check What is the mass in amu of 75 silver atoms? 75 Ag atoms x 107.9 amu = 8093 amu 1 Ag atom

8 Chapter 8 Slide 8 of 75 Learning Check How many gold atoms have a mass of 1.85 x 10 5 amu? 1.85 x 10 5 amu x 1 Au atom = 939 Au atoms 197.0 amu

9 Chapter 8 Slide 9 of 75 Formula Mass The formula mass is The mass in amu of a compound. The sum of the atomic masses of the elements in a formula. Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

10 Chapter 8 Slide 10 of 75 Calculating Formula Mass To calculate the formula mass of Na 2 SO 4 Multiply the atomic mass of each element by its subscript, then total the masses of the atoms. 2 Na x 22.99 amu = 45.98 amu 1 Na 1 S x 32.07 amu = 32.07 amu 142.05 amu 1 S 4 O x 16.00 amu = 64.00 amu 1 O

11 Chapter 8 Slide 11 of 75 Learning Check Using the periodic table, calculate the formula mass of aluminum sulfide Al 2 S 3. 2 Al x 26.98 amu = 53.96 amu 1 Al 3 S x 32.07 amu = 96.21 amu 1 S 150.17 amu

12 Chapter 8 Slide 12 of 75 The Mole Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

13 Chapter 8 Slide 13 of 75 Collection Terms A collection term states a specific number of items. 1 dozen donuts = 12 donuts 1 ream of paper = 500 sheets 1 case = 24 cans Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

14 Chapter 8 Slide 14 of 75 A mole (mol) is a collection that contains The same number of particles as there are carbon atoms in 12.01 g of carbon. 6.022 x 10 23 atoms of an element (Avogadro’s number). 1 mol C = 6.022 x 10 23 C atoms 1 mol Na = 6.022 x 10 23 Na atoms 1 mol Au = 6.022 x 10 23 Au atoms A Mole of Atoms

15 Chapter 8 Slide 15 of 75 A mole Of a covalent compound has Avogadro’s number of molecules. 1 mol CO 2 = 6.022 x 10 23 CO 2 molecules 1 mol H 2 O = 6.022 x 10 23 H 2 O molecules Of an ionic compound contains Avogadro’s number of formula units. 1 mol NaCl = 6.022 x 10 23 NaCl formula units 1 mol K 2 SO 4 = 6.022 x 10 23 K 2 SO 4 formula units A Mole of A Compound

16 Chapter 8 Slide 16 of 75 Samples of One Mole Quantities Table 8.1 Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

17 Chapter 8 Slide 17 of 75 Avogadro’s number 6.022 x 10 23 can be written as an equality and two conversion factors. As an equality: 1 mol particles = 6.022 x 10 23 particles As conversion Factors: 6.022 x 10 23 particles and 1 mol particles 1 mol particles 6.022 x 10 23 particles Avogadro’s Number

18 Chapter 8 Slide 18 of 75 Using Avogadro’s Number Avogadro’s number Converts moles of a substance to the number of particles. How many Cu atoms are in 0.50 mol Cu? 0.50 mol Cu x 6.022 x 10 23 Cu atoms 1 mol Cu = 3.0 x 10 23 Cu atoms Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

19 Chapter 8 Slide 19 of 75 Using Avogadro’s Number Avogadro’s number Converts particles of a substance to moles. How many moles of CO 2 are 2.50 x 10 24 CO 2 molecules? 2.50 x 10 24 CO 2 x 1 mol CO 2 6.022 x 10 23 CO 2 = 4.15 mol CO 2

20 Chapter 8 Slide 20 of 75 The number of atoms in 2.0 mol Al is 2.0 mol Al x 6.022 x 10 23 Al atoms = 1 mol Al 1.2 x 10 24 Al atoms Learning Check

21 Chapter 8 Slide 21 of 75 The number of moles of S in 1.8 x 10 24 atoms S is 1.8 x 10 24 S atoms x 1 mol S = 6.022 x 10 23 S atoms 3.0 mol S atoms Learning Check

22 Chapter 8 Slide 22 of 75 Subscripts and Moles The subscripts in a formula state The relationship of atoms in the formula. The moles of each element in 1 mol of compound. Glucose C 6 H 12 O 6 In 1 molecule: 6 atoms C 12 atoms H6 atoms O In 1 mol: 6 mol C 12 mol H 6 mol O

23 Chapter 8 Slide 23 of 75 Subscripts State Atoms and Moles 1 mol C 9 H 8 O 4 = 9 mol C 8 mol H 4 mol O Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

24 Chapter 8 Slide 24 of 75 Factors from Subscripts Subscripts used for conversion factors Relate moles of each element in 1 mol compound. For aspirin C 9 H 8 O 4 can be written as: 9 mol C 8 mol H 4 mol O 1 mol C 9 H 8 O 4 1 mol C 9 H 8 O 4 1 mol C 9 H 8 O 4 and 1 mol C 9 H 8 O 4 1 mol C 9 H 8 O 4 1 mol C 9 H 8 O 4 9 mol C 8 mol H 4 mol O

25 Chapter 8 Slide 25 of 75 Learning Check How many moles O are in 0.150 mol aspirin C 9 H 8 O 4 ? 0.150 mol C 9 H 8 O 4 x 4 mol O = 0.600 mol O 1 mol C 9 H 8 O 4 subscript factor

26 Chapter 8 Slide 26 of 75 Learning Check How many O atoms are in 0.150 mol aspirin C 9 H 8 O 4 ? 0.150 mol C 9 H 8 O 4 x 4 mol O x 6.022 x 10 23 O atoms 1 mol C 9 H 8 O 4 1 mol O subscript Avogadro’s factor number = 3.61 x 10 23 O atoms

27 Chapter 8 Slide 27 of 75 Molar Mass Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

28 Chapter 8 Slide 28 of 75 Molar Mass The molar mass Is the mass of one mol of an element or compound. Is the atomic mass expressed in grams. Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

29 Chapter 8 Slide 29 of 75 Molar Mass from the Periodic Table Molar mass Is the atomic mass expressed in grams. Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

30 Chapter 8 Slide 30 of 75 Give the molar mass for: A. 1 mol K atoms = 39.10 g B.1 mol Sn atoms = 118.7 g Learning Check

31 Chapter 8 Slide 31 of 75 Molar Mass of a Compound The molar mass of a compound is the sum of the molar masses of the elements in the formula. Example: Calculate the molar mass of CaCl 2. ElementNumber of Moles Atomic MassTotal Mass Ca140.08 g/mol 40.08 g Cl235.45 g/mol 70.90 g CaCl 2 110.98 g

32 Chapter 8 Slide 32 of 75 Molar Mass of K 3 PO 4 Calculate the molar mass of K 3 PO 4. ElementNumber of Moles Atomic MassTotal Mass in K 3 PO 4 K339.10 g/mol 117.3 g P130.97 g/mol 30.97 g O416.00 g/mol 64.00 g K 3 PO 4 212.3 g

33 Chapter 8 Slide 33 of 75 Some One-Mol Quantities 32.07 g 55.85 g 58.44 g 294.20 g 342.30 g Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

34 Chapter 8 Slide 34 of 75 A. K 2 O 94.20 g/mol 2 mol K (39.10 g/mol) + 1 mol O (16.00 g/mol) 78.20 g + 16.00 g = 94.20 g B. Al(OH) 3 78.00 g/mol 1 mol Al (26.98 g/mol) + 3 mol O (16.00 g/mol) + 3 mol H (1.008 g/mol) 26.98 g + 48.00 g + 3.024 g = 78.00 g Learning Check

35 Chapter 8 Slide 35 of 75 Calculations Using Molar Mass Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

36 Chapter 8 Slide 36 of 75 Molar mass conversion factors Are written from molar mass. Relate grams and moles of an element or compound. Example: Write molar mass factors for methane CH 4 used in gas cook tops and gas heaters. Molar mass: 1 mol CH 4 = 16.04 g Conversion factors: 16.04 g CH 4 and 1 mol CH 4 1 mol CH 4 16.04 g CH 4 Molar Mass Factors

37 Chapter 8 Slide 37 of 75 Acetic acid C 2 H 4 O 2 gives the sour taste to vinegar. Write two molar mass factors for acetic acid. Calculate molar mass: 24.02 + 4.032 + 32.00 = 60.05 g/mol 1 mol of acetic acid = 60.05 g acetic acid Molar mass factors 1 mol acetic acid and 60.05 g acetic acid 60.05 g acetic acid 1 mol acetic acid Learning Check

38 Chapter 8 Slide 38 of 75 Molar mass factors are used to convert between the grams of a substance and the number of moles. Calculations Using Molar Mass Grams Molar mass factor Moles

39 Chapter 8 Slide 39 of 75 Aluminum is used to build lightweight bicycle frames. How many grams of Al are 3.00 mol Al? Molar mass equality: 1 mol Al = 26.98 g Al Setup with molar mass as a factor: 3.00 mol Al x 26.98 g Al = 80.9 g Al 1 mol Al molar mass factor for Al Moles to Grams

40 Chapter 8 Slide 40 of 75 Learning Check Allyl sulfide C 6 H 10 S is a compound that has the odor of garlic. How many moles of C 6 H 10 S are in 225 g C 6 H 10 S? Action Plan: Calculate the molar mass, and convert 225 g to moles. Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings Grams Molar mass factor Moles

41 Chapter 8 Slide 41 of 75 Calculate the molar mass of C 6 H 10 S. (6 x 12.01) + (10 x 1.008) + (1 x 32.07) = 114.21 g/mol Set up the calculation using a mole factor. 225 g C 6 H 10 S x 1 mol C 6 H 10 S 114.21 g C 6 H 10 S molar mass factor(inverted) = 1.97 mol C 6 H 10 S Solution

42 Chapter 8 Slide 42 of 75 Grams, Moles, and Particles A molar mass factor and Avogadro’s number convert Grams to particles molar mass Avogadro’s number (g mol particles) Particles to grams Avogadro’s molar mass number (particles mol g)

43 Chapter 8 Slide 43 of 75 Learning Check How many H 2 O molecules are in 24.0 g H 2 O? A) 4.52 x 10 23 B) 1.44 x 10 25 C) 8.02 x 10 23

44 Chapter 8 Slide 44 of 75 Learning Check How many H 2 O molecules are in 24.0 g H 2 O? 24.0 g H 2 O x 1 mol H 2 O x 6.022 x 10 23 H 2 O molecules 18.02 g H 2 O 1 mol H 2 O = 8.02 x 10 23 H 2 O molecules

45 Chapter 8 Slide 45 of 75 Learning Check If the odor of C 6 H 10 S can be detected from 2 x 10 -13 g in one liter of air, how many molecules of C 6 H 10 S are present? 2 x 10 -13 g x 1 mol x 6.022 x 10 23 molecules 114.21 g 1 mol = 1 x 10 9 molecules C 6 H 10 S

46 Chapter 8 Slide 46 of 75 Percent Composition and Empirical Formulas Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

47 Chapter 8 Slide 47 of 75 Percent Composition Percent composition Is the percent by mass of each element in a formula. Example: Calculate the percent composition of CO 2. CO 2 = 1 C(12.01g) + 2 O(16.00 g) = 44.01 g/mol) 12.01 g C x 100 = 27.29 % C 44.01 g CO 2 32.00 g O x 100 = 72.71 % O 44.01 g CO 2 100.00 %

48 Chapter 8 Slide 48 of 75 What is the percent composition of lactic acid, C 3 H 6 O 3, a compound that appears in the blood after vigorous activity? → Learning Check

49 Chapter 8 Slide 49 of 75 STEP 1 3C(12.01) + 6H(1.008) + 3O(16.00) = 90.08 g/mol 36.03 g C + 6.048 g H + 48.00 g O STEP 2 %C = 36.03 g C x 100= 40.00% C 90.08 g cpd %H = 6.048 g H x 100 = 6.714% H 90.08 g cpd %O = 48.00 g O x 100 = 53.29% O 90.08 g cpd Solution C3H6O3C3H6O3

50 Chapter 8 Slide 50 of 75 Learning Check The chemical isoamyl acetate C 7 H 14 O 2 gives the odor of pears. What is the percent carbon in isoamyl acetate? Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

51 Chapter 8 Slide 51 of 75 Molar mass C 7 H 14 O 2 = 7C(12.01) + 14H(1.008) + 2O(16.00) = 130.18 g/mol Total C = 7C(12.01) = g % C = total g C x 100 total g cpd % C= 84.07 g C x 100 = 64.58 % C 130.18 g cpd Solution C 7 H 14 O 2

52 Chapter 8 Slide 52 of 75 The empirical formula Is the simplest whole number ratio of the atoms. Is calculated by dividing the subscripts in the actual (molecular) formula by a whole number to give the lowest ratio. C 5 H 10 O 5  5 = C 1 H 2 O 1 = CH 2 O actual (molecular) empirical formula formula Empirical Formulas

53 Chapter 8 Slide 53 of 75 Some Molecular and Empirical Formulas The molecular formula is the same or a multiple of the empirical. Table 8.3 Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

54 Chapter 8 Slide 54 of 75 1. What is the empirical formula for C 4 H 8 ? A) C 2 H 4 B) CH 2 C) CH 2. What is the empirical formula for C 8 H 14 ? A) C 4 H 7 B) C 6 H 12 C) C 8 H 14 3. Which is a possible molecular formula for CH 2 O? A) C 4 H 4 O 4 B) C 2 H 4 O 4 C) C 3 H 6 O 3 Learning Check P-1

55 Chapter 8 Slide 55 of 75 A compound contains 7.31 g Ni and 20.0 g Br. Calculate its empirical (simplest) formula. Lets ask, what does the empirical formula tell us? The ratio of atoms of each element, ratio of moles of each element. Action Plan: Convert mass (g) to moles. Learning Check

56 Chapter 8 Slide 56 of 75 Convert 7.31 g Ni and 20.0 g Br to moles. 7.31 g Ni x 1 mol Ni = 0.125 mol Ni 58.69 g Ni 20.0 g Br x 1 mol Br = 0.250 mol Br 79.90 g Br Divide by smallest: 0.125 mol Ni = 1 Ni0.250 mol Br = 2 Br 0.125 0.125 Write ratio as subscripts: NiBr 2 Solution

57 Chapter 8 Slide 57 of 75 Converting Decimals to Whole Numbers When the number of moles for an element is a decimal, all the moles are multiplied by a small integer to obtain whole number. Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings Table 6.4

58 Chapter 8 Slide 58 of 75 Aspirin is 60.0% C, 4.5 % H and 35.5 % O. Calculate its empirical (simplest) formula. We have percentages, not grams. However, the percentages are really an expression of grams of an element in 100. (exact) grams of compound. Learning Check

59 Chapter 8 Slide 59 of 75 STEP 1. Calculate the moles of each element in 100. g of the compound. 100. g aspirin contains 60.0% C or 60.0 g C, 4.5% H or 4.5 g H, and 35.5% O or 35.5 g O. 60.0 g C x 1 mol C = 5.00 mol C 12.01 g C 4.5 g H x 1 mol H = 4.5 mol H 1.008 g H 35.5 g O x 1mol O = 2.22 mol O 16.00 g O Solution

60 Chapter 8 Slide 60 of 75 Solution (continued) STEP 2. Divide by the smallest number of mol. 5.00 mol C= 2.25 mol C (decimal) 2.22 4.5 mol H = 2.0 mol H 2.22 2.22 mol O = 1.00 mole O 2.22

61 Chapter 8 Slide 61 of 75 Solution (continued) 3. Use the lowest whole number ratio as subscripts When the moles are not whole numbers, multiply by a factor to give whole numbers, in this case x 4. C: 2.25 mol C x 4 = 9 mol C H: 2.0 mol Hx 4 = 8 mol H O: 1.00 mol O x 4 = 4 mol O Using these whole numbers as subscripts the simplest formula is C 9 H 8 O 4

62 Chapter 8 Slide 62 of 75 Molecular Formulas Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

63 Chapter 8 Slide 63 of 75 A molecular formula Is a multiple (or equal) of its empirical formula. Has a molar mass that is the empirical formula mass multiplied by a whole number. molar mass = a whole number empirical mass Is obtained by multiplying the empirical formula by a whole number. Relating Molecular and Empirical Formulas

64 Chapter 8 Slide 64 of 75 Diagram of Molecular and Empirical Formulas A small integer links A molecular formula and its empirical formula. A molar mass and its empirical formula mass. Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings

65 Chapter 8 Slide 65 of 75 Determine the molecular formula of compound that has a molar mass of 78.11 g and an empirical formula of CH. STEP 1. Empirical formula mass of CH = 13.02 g STEP 2. Divide the molar mass by the empirical mass. 78.11 g = 5.999 ~ 6 13.02 g STEP 3. Multiply each subscript in C 1 H 1 by 6. molecular formula = C 1x 6 H 1 x 6 = C 6 H 6 Finding the Molecular Formula

66 Chapter 8 Slide 66 of 75 Some Compounds with Empirical Formula CH 2 O Copyright © 2008 by Pearson Education, Inc. Publishing as Benjamin Cummings Table 6.5

67 Chapter 8 Slide 67 of 75 A compound has a molar mass of 176.1g and an empirical formula of C 3 H 4 O 3. What is the molecular formula? What do we need to do? From the empirical formula, determine the empirical mass. Then determine the whole number integer. Learning Check

68 Chapter 8 Slide 68 of 75 A compound has a formula mass of 176.1 and an empirical formula of C 3 H 4 O 3. What is the molecular formula? C 3 H 4 O 3 = 88.06 g/EF 176.1 g (molar mass) = 2.00 88.06 g (empirical mass) Molecular formula = 2 x empirical formula C 3 x 2 H 4 x 2 O 3 x 2 = C 6 H 8 O 6 Solution

69 Chapter 8 Slide 69 of 75 A compound contains C 24.27%, H 4.07%, and Cl 71.65%. The molar mass is about 99 g. What are the empirical and molecular formulas? STEP 1. Calculate the empirical formula. Write the mass percents as the grams in a 100.00-g sample of the compound. C 24.27 g H 4.07 g Cl 71.65 g Molecular Formula

70 Chapter 8 Slide 70 of 75 Finding the Molecular Formula ( Continued) Calculate the number of moles of each element. 24.27 g C x 1 mol C = 2.021 mol C 12.01 g C 4.07 g H x 1 mol H = 4.04 mol H 1.008 g H 71.65 g Cl x 1 mol Cl = 2.021 mol Cl 35.45 g Cl

71 Chapter 8 Slide 71 of 75 Finding the Molecular Formula ( Continued) Divide by the smallest number of moles: 2.021 mol C =1 mol C 2.021 4.04 mol H =2 mol H 2.021 2.02 mol Cl=1 mol Cl 2.021 Empirical formula = C 1 H 2 Cl 1 = CH 2 Cl Calculate empirical mass (EM) CH 2 Cl = 49.48 g

72 Chapter 8 Slide 72 of 75 Finding the Molecular Formula ( Continued) STEP 2. Divide molar mass by empirical mass. Molar mass = 99 g = 2 Empirical mass 49.48 g STEP 3. Multiply the empirical formula by the small integer to determine the molecular formula. 2 x (CH 2 Cl) C 1 x2 H 2 x 2 Cl 1x 2 = C 2 H 4 Cl 2

73 Chapter 8 Slide 73 of 75 A compound is 27.4% S, 12.0% N and 60.6 % Cl. If the compound has a molar mass of 351 g, what is the molecular formula? Learning Check

74 Chapter 8 Slide 74 of 75 In 100. g, there are 27.4 g S, 12.0 g N, and 60.6 g Cl. 27.4 g S x 1 mol S = 0.854 mol S 32.07 g S 12.0 g N x 1 mol N = 0.857 mol N 14.01 g N 60.6 g Cl x 1mol Cl = 1.71 mol Cl 35.45 g Cl Solution

75 Chapter 8 Slide 75 of 75 Divide by the smallest number of moles 0.854 mol S /0.854 = 1.00 mol S 0.857 mol N/0.854 = 1.00 mol N 1.71 mol Cl/0.854 = 2.00 mol Cl empirical formula = SNCl 2 = 116.98 g Molar Mass/ Empirical mass 351 g = 3 116.98 g molecular formula = (SNCl 2 ) 3 = S 3 N 3 Cl 6 Solution (continued)

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