Introductory Chemistry: A Foundation FOURTH EDITION by Steven S. Zumdahl University of Illinois Chemical Composition Chapter 8 1 2 Atomic Masses Balanced equation tells us the relative numbers of molecules of reactants and products C + O 2 CO 2 1 atom of C reacts with 1 molecule of O 2 to make 1 molecule of CO 2 If I want to know how many O 2 molecules I will need or how many CO 2 molecules I can make, I will need to know how many C atoms are in the sample of carbon I am starting with Atomic Masses Dalton used the percentages of elements in compounds and the chemical formulas to deduce the relative masses of atoms Unit is the amu. atomic mass unit 1 amu 1.66 x 10-24 g We define the masses of atoms in terms of atomic mass units 1 Carbon atom 12.01 amu, 1 Oxygen atom 16.00 amu 1 O 2 molecule 2(16.00 amu) 2.00 amu 4 Atomic Masses Example #1 Calculate the Mass (in amu) of 75 atoms of Al Atomic masses allow us to convert weights into numbers of atoms If our sample of carbon weighs.00 x 10 20 amu we will have 2.50 x 10 19 atoms of carbon 20 1C atom 19.00 x 10 amu x 2.50 x 10 C atoms 12.01amu Since our equation tells us that 1 C atom reacts with 1 O 2 molecule, if I have 2.50 x 10 19 C atoms, I will need 2.50 x 10 19 molecules of O 2 5 Determine the mass of 1 Al atom 1 atom of Al 26.98 amu Use the relationship as a conversion factor 26.98 amu 75 Al atoms x 2024 amu 1 Al atom 6
Chemical Packages - Moles The MOLE We use a package for atoms and molecules called a mole A mole is the number of particles equal to the number of Carbon atoms in 12 g of C-12 One mole 6.022 x 10 2 units The number of particles in 1 mole is called Avogadro s Number 1 mole of C atoms weighs 12.01 g and has 6.02 x 10 2 atoms 7 8 The Mole When two chemicals react with each other, we want to know how many atoms or molecules of each are used do that a formula of the product can be established. This means we need a way to count atoms, but HOW? The solution to this problem is to define a convenient unit of matter that contains a know number of particles. 1 moles 6.0221676 10 2 particles This value is commonly known has Avogadro s number. Remember that one mole always contains the same number of particles, no matter what the substance. Molar Mass The mass of one mole of atoms of any element is the molar mass, which is numerically equal to the atomic mass, but in grams. Example: 1 mole of sodium weighs 22.99 g This not only true for atoms, but also for molecules, but we use the molecular mass instead of the atomic mass. To determine the molecular mass of a molecule, we add up the atomic masses of the elements that make up the molecule. Example: CCl 4» We have 1 carbon and 4 chlorines» 12.001 g/mol + 4(5.4527 g/mol) 15.81 g/mol» Therefore, if we have 1 mole of CCl 4 it would weigh 15.81 g. 9 10 Molecules, Compounds, and The Mole Thinking about moles with respect to molecules and compounds is not all that different than with atoms. If I have 1 mole of CH 4: 1. How many CH 4 molecules do I have? I have 6.022 10 2 molecules of CH 4 2. How much does it weigh? 16.02 g. How many carbon atoms do I have? 6.022 10 2 4. How many hydrogen atoms do I have? MOLES are the CENTER # of particles a) Multiply by Avogadro s Number b) Divide by Avogadro s Number c) Multiply by the molecular weight of X d) Divide by the molecular weight of X a b # of moles of X c Mass d e f Vol. of an ideal gas @ STP e) Multiply by 22.4 L / mol f) Divide by 22.4 L / mol 11 4 6.022 10 2 2.409 10 24 12
What is the mass, in grams, of 1.5 mols of silicon? 42.128 g How many moles are represented by 454 g of sulfur? How many atoms? 14.2 mols 8.5 10 24 atoms EXAMPLES At first these concepts are difficult to understand, but working problems is the best way to become comfortable with these concepts. Calculate the molar mass of CaCO (limestone). 100.08 g/mol If you have 454 g of CaCO, how many moles do you have? How many molecules? How many atoms of oxygen? 4.54 mols 2.7 10 2 molecules 8.20 10 24 atom of O 1 Example #2 and number of atoms in 10.0 g of Al Use the Periodic Table to determine the mass of 1 mole of Al 1 mole Al 26.98 g grams-to-moles 1 mol Al 10.0 g Al x 0.71 mol Al 26.98 g 14 and number of atoms in 10.0 g of Al Use Avogadro s Number to determine the number of atoms in 1 mole 1 mole Al 6.02 x 10 2 atoms moles-to-atoms 0.71 mol Al x Example #2 2 6.02 x 10 atoms 2.2 x 10 1 mol Al 2 Al atoms Example # and mass of 2.2 x 10 2 atoms of Al Use Avogadro s Number to determine the number of atoms in 1 mole 1 mole Al 6.02 x 10 2 atoms atoms-to-moles 2 1molAl 2.2x 10 Alatoms x 0.70molAl 2 6.02x 10 atoms 15 16 Example # and mass of 2.2 x 10 2 atoms of Al Use the Periodic Table to determine the mass of 1 mole of Al 1 mole Al 26.98 g moles-to-grams 26.98 g 0.70 mol Al x 9.99 g Al 1 mol Al Molar Mass The molar mass is the mass in grams of one mole of a compound The relative weights of molecules can be calculated from atomic masses water H 2 O 2(1.008 amu) + 16.00 amu 18.02 amu 1 mole of H 2 O will weigh 18.02 g, therefore the molar mass of H 2 O is 18.02 g 1 mole of H 2 O will contain 16.00 g of oxygen and 2.02 g of hydrogen 17 18
Percent Composition Percentage of each element in a compound By mass Can be determined from the formula of the compound or the experimental mass analysis of the compound The percentages may not always total to 100% due to rounding part Percentage 100% whole 19 Percent Composition Percent Composition The percentage of the mass of a compound represented by each of its constituent elements. According to the law of constant composition, any sample of a pure compound always consists of the same elements combined in the same proportion by mass. Example: What is the percent composition of N and H in ammonia (NH )? Mass Percent N in NH Mass of N in 1 mol of NH 14.01 g N 100 Mass of 1 mol of NH 17.0 g NH 82.27% Mass Percent H in NH Mass of H in 1 mol of NH (1.008) g H 100 Mass of 1 mol of NH 17.0 gnh 17.76% 20 Empirical and Molecular Formulas We have discussed molecular formulas Empirical formulas A molecular formula showing the simplest possible ratio of atoms in a molecule. From percent compositions we can determine empirical and molecular formulas by the following procedure. x mol A % A g A x mols A % B g B x mols B Find mole y mol B ratio Ratio gives formula A x B y 21 Example Eugenol is the active component of oil of cloves. It has a molar mass of 164.2 g/mol and is 7.14% C and 7.7% H; the remainder is oxygen. What are empirical and molecular formulas for eugenol? Where to start?! 1. What is the % of oxygen? 100% - (7.14% + 7.7%) 19.49% 2. How many grams of C, H, and O? Assume you have 100 g of the compound therefore your percentages are the number of grams of C, H, and O. 7.14 g of C 7.7 g of H 19.49 g of O. Change the grams into moles. 7.14 g of C 1 mole of C / 12.011g of C 6.09 mols of C 7.7 g of H 1 mole of H / 1.0079 g of H 7.1 mols of H 19.49 g of O 1 mole of O / 15.9994 g of O 1.22 mols of O 4. Find the mole ratios (divide the large amount(s) of moles by the smallest amount of moles). 6.09 mols of C / 1.22 mols of O 5 mols of C to 1 mol of O 7.7 mols of H / 1.22 mols of O 6 mols of H to 1 mol of O 5. So what does this mean? C 5 H 6 O is the 6. How to get the molecular formula? Molecular weight of the. 82 g/mol Divide the molecular weight of eugenol by the molecular weight. 164.2 g/mol / 82 g/mol 2 So there are 2 units of the. (C 5H 6O) 2 C 10H 12O 2 22 Hydrated Compounds If ionic compounds are prepared water solution and then isolated as solids, the crystals often have molecules of water trapped in the lattice. Compounds in which molecules of water are associated with the ions of the compound are called hydrated compounds. Examples: NiCl 2 6H 2 O CaSO 4 2H 2 O But what about the molar mass? (Do I add the water?) YES! NiCl 2 6H 2 O 27.7 g/mol 129.6 g/mol from NiCl 2 108.1 g/mol from 6H 2 O CaSO 4 2H 2 O 172.14 g/mol 2 Determining the Units of Hydration Example: The following reaction takes place. 1.02 g of CuSO 4 x H 2 O + heat 0.654 g CuSO 4 +? g H 2 O Find the units of hydration. Step 1: determine the mass of water 1.02 g of CuSO 4 x H 2 O 0.654 g of CuSO 4 0.69 g of water Step 2: determine the number of moles 0.69 g of water 1 mol of water / 18.02 g of water 0.0205 mols of water 0.654 g CuSO 4 1 mols CuSO 4 / 159.6 g CuSO 4 0.00410 mols CuSO 4 Step : determine the molar ratio 0.0205 mol H O 0.00410 mol CuSO 4 1.00 mol CuSO So, we know that we started with 1.02 g of CuSO 4 5 H 2 O 2 5.00 mol H O 2 4 24
Example #4 Determine the Percent Composition from the Formula C 2 H 5 OH Determine the mass of each element in 1 mole of the compound 2 moles C 2(12.01 g) 24.02 g 6 moles H 6(1.008 g) 6.048 g 1 mol O 1(16.00 g) 16.00 g Determine the molar mass of the compound by adding the masses of the elements 1 mole C 2 H 5 OH 46.07 g Example #4 Determine the Percent Composition from the Formula C 2 H 5 OH Divide the mass of each element by the molar mass of the compound and multiply by 100% 24.02g 100% 52.14%C 46.07g 6.048g 100% 1.1%H 46.07g 16.00g 100% 4.7%O 46.07g 25 26 Empirical Formulas The simplest, whole-number ratio of atoms in a molecule is called the Empirical Formula can be determined from percent composition or combining masses The Molecular Formula is a multiple of the Empirical Formula MM A % A mass A (g) moles A MM B moles A moles B % B mass B (g) moles B Example #5 Benzopyrene, C 20 H 12 Find the greatest common factor (GCF) of the subscripts factors of 20 (10 x 2), (5 x 4) factors of 12 (6 x 2), (4 x ) GCF 4 Divide each subscript by the GCF to get the C 20 H 12 (C 5 H ) 4 Empirical Formula C 5 H 27 28 Convert the percentages to grams by assuming you have 100 g of the compound Step can be skipped if given masses 47gC 47gC 47gO 6.0gH 47gO 6.0gH Convert the grams to moles 1mol C 47g C.9 mol C 12.01g 1mol H 6.0 g H 6.0 mol H 1.008g 1 mol O 47 g O 2.9 mol O 16.00g 29 0
Divide each by the smallest number of moles.9 mol C 2.9 1. 6.0 mol H 2.9 2 2.9 mol O 2.9 1 If any of the ratios is not a whole number, multiply all the ratios by a factor to make it a whole number If ratio is?.5 then multiply by 2; if?. or?.67 then multiply by ; if?.25 or?.75 then multiply by 4 Multiply all the Ratios by Because C is 1..9 mol C 2.9 1. x 4 6.0 mol H 2.9 2 x 6 2.9 mol O 2.9 1 x 1 2 Use the ratios as the subscripts in the.9 mol C 2.9 1. x 4 6.0 mol H 2.9 2 x 6 2.9 mol O 2.9 1 x C 4 H 6 O Molecular Formulas The molecular formula is a multiple of the To determine the molecular formula you need to know the and the molar mass of the compound 4 Example #7 Determine the Molecular Formula of Benzopyrene if it has a molar mass of 252 g and an of C 5 H Determine the May need to calculate it as previous C 5 H Determine the molar mass of the empirical formula 5 C 60.05 g, H.024 g C 5 H 6.07 g Example #7 Determine the Molecular Formula of Benzopyrene if it has a molar mass of 252 g and an of C 5 H Divide the given molar mass of the compound by the molar mass of the Round to the nearest whole number 252g 6.07g 4 5 6
Example #7 Determine the Molecular Formula of Benzopyrene if it has a molar mass of 252 g and an of C 5 H Multiply the by the calculated factor to give the molecular formula (C 5 H ) 4 C 20 H 12 Homework Questions and Problems: 6, 12, 14, 16, 18, 20, 22, 24, 26, 28, 0, 2, 4, 6, 8, 40, 42, 44, 46, 48, 50, 54, 56, 58, 60, 62, 64, 66, 68, 70, 72, 74, 76, 78, 80, 82, 84 7 8