Chapter 3. Stoichiometry of Chemical Formulas And Equations. ? grams +? grams. ? grams

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Chapter 3 Stoichiometry of Chemical Formulas And Equations A chemical formula of a compound indicates the number ratio of combining atoms.

We can view covalent and ionic compounds at a atomic level and use special names to describe mass.

(17) (18) The Molecular mass is the sum of the atomic masses (in amu) in a single molecule (COVALENT). SO 2 1S 2O SO 2 32.07 amu + 2 x 16.00 amu 64.

1 Chapter 3 Stoichiometry of Chemical Formulas And Equations A chemical formula of a compound indicates the number ratio of combining atoms. Subscript: indicates the # of bonded H atoms Leading coefficients: indicate the number of molecules or atoms. We can view covalent and ionic compounds at a atomic level and use special names to describe mass. 1A 2A 3A 4A 5A 6A 7A 8A Some elements occur in nature as molecules and not as discrete (1) elements (2) as written (13) (14) in the (15) Periodic (16) Table. (17) (18) The Molecular mass is the sum of the atomic masses (in amu) in a single molecule (COVALENT). SO 2 1S 2O SO amu + 2 x amu amu The Formula mass is the sum of atomic masses (in amu) in a single ionic formula unit (IONIC). H2 H 2 N2 N 2 O2O 2 F2 F 2 P 4 S 8 Cl P4 S8 2 Se 8 Br 2 Se8 Cl2 Br2 I 2 I2 NaCl 1Na amu 1Cl amu NaCl amu tetratomic molecules octatomic molecules diatomic molecules Chemical reactions require specific numbers of molecules or formula units to react. If we can t see molecules to count them, then how do we do accomplish the counting task? Chemistry needs to count # s of reactants but how? + 2H2 + 1 O2 2H2O 4 amu + 32 amu 36 amu? grams +? grams? grams How do we connect the atomic world to the big world? Chemistry counts atoms and molecules indirectly by comparing masses of the same number of things using ratio of masses built into the periodic table. Masses 12 red marbles 84 g 12 yellow marbles 48 g 12 purple marbles 40.g 12 green marbles 20.g 12 red marble = 84 grams 12 yellow marble = 48 grams 1 red must be 1.75 times heavier than 1 yellow marble (84g/48g =1.75)

The scale has 1 mole (6.02 X 10 23 ) of atoms Fe on one side and 1 mole of S atoms on the other. 55.85 g Fe 32.07 g S Think of the mole as a counting unit for a collection of: 6.

! Special Numbers Defined Unit Mass Connection 12 H2O molecules 1 dozen H2O molecules none Fe and S have the same number of atoms counted out but they don t weigh the same! 55.85 g Fe = 6.

0 grams of H2O KEY RIFF: The periodic table tells us the mass of 1- atom of any element in amu, AND it also tells us the mass of 1-mole (6.02 x 10 23 ) of an element in grams! The mole links 6.

2 The scale has 1 mole (6.02 X ) of atoms Fe on one side and 1 mole of S atoms on the other g Fe g S Think of the mole as a counting unit for a collection of: 6.02 x things---unlike all other counting numbers it is also linked to masses given in the periodic table!! Special Numbers Defined Unit Mass Connection 12 H2O molecules 1 dozen H2O molecules none Fe and S have the same number of atoms counted out but they don t weigh the same! g Fe = x atoms Fe = 1 mol Fe atoms g S = x atoms S = 1 mol S atoms 144 H2O molecules 6.02 x molecules 1 gross H2O molecules 1 mole H2O molecules none 18.0 grams of H2O KEY RIFF: The periodic table tells us the mass of 1- atom of any element in amu, AND it also tells us the mass of 1-mole (6.02 x ) of an element in grams! The mole links 6.02 x entities (atoms, molecules or formula units) to a mass in grams. Atomic Size MOLE molecular mass of water molar mass of water Thinking Small and Thinking Big Covalent Compounds The Molecular mass (or molecular weight) is the sum of the atomic masses (in amu) in a single molecule. Thinking Small and Thinking Big Ionic Compounds The formula mass (or forumula weight) is the sum of the atomic masses (in amu) in a formula unit. SO 2 1S 2O SO amu + 2 x amu amu 1 Na 1 Cl NaCl amu amu amu The Molar mass of a compound is the same number as the molecular mass with units of grams per mole. 1 molecule SO 2 = amu 1 mole SO 2 = g SO 2 The molar mass of an ionic compound is numerically equal to the formula mass, in units of grams/mole. Molar mass of NaCl = g/mol 1 mole of NaCl(s) = grams NaCl(s) 6.022!10 23 NaCl units = grams NaCl(s)

3 Do You Understand Molecular and Molar Mass? What is the molecular mass of glucose, C 6 H 12 O 6 We must learn how to recognize conversion factors within a chemical formula, and how to convert grams to moles to molecules to atoms and vis versa. Molecular Mass: Glucose s molecular formula C 6 H 12 O 6 6 x x x = amu Molar Mass: = grams C6H12O6 which contains 1 mol C6H12O6 or X molecules C6H12O6 MASS(g) of compound Molar mass (g/mol) MOLES of compound MOLECULES or FORMULA UNITS Chemical Formula Avogadro s Number MOLES of elements in compound ATOMS in a compound A chemical formula provides lots of information Example: C 6 H 12 O 6 (MW = g/mol) Atoms in 1 glucose molecule Mass of 1 glucose molecule Atoms/mole of compound Moles of atoms in 1 mole of compound Mass/mole of compound Carbon (C) 6 atoms 12 atoms 6(12.01 amu) =72.06 amu 6(6.022 x ) atoms 6 moles of atoms Hydrogen (H) 12(1.008 amu) =12.10 amu 12(6.022 x ) atoms 12 moles of atoms g g Oxygen (O) 6 atoms 6(16.00 amu) =96.00 amu 6(6.022 x ) atoms 6 moles of atoms g A chemical formula or molecular formula provides lots of information!! Al2(SO4)3 2 atoms of Al and 3 molecules of (SO4) 2- = 1 formula unit Al2(SO4)3 2 moles of Al and 3 moles of (SO4) 2- = 1 formula unit Al2(SO4)3 1 formula unit Al2(SO4)3 = amu Al2(SO4)3 1 mole Al2(SO4)3 = g Al2(SO4)3 1 mole Al2(SO4)3 = x formula units Al2(SO4)3 1 mole Al2(SO4)3 = 2 mol Al 3+ ions 1 mole Al2(SO4)3 = 3 mol (SO4) 2- ions 1 mole Al2(SO4)3 = 12 mol O atoms = 12 x A.N. O atoms 1 mole Al2(SO4)3 = 3 mol S atoms = 3 x A.N. S atoms 1 mole Al2(SO4)3 = 2 mol Al atoms =2 x A.N. Al atoms Molecular formulas indicates the type and the ratios of combining atoms in a covalent compound. H2O(l) covalent compound There are many conversion factors in a formula. 1 molecule H2O = 1 atom O and 2 atoms of H Molecular mass H2O = (2 x 1.008) = amu Molar mass = g/mol H2O 1 mole H2O = x molecules H2O 1 mole H2O = 2 mol H atoms = 2 x 6.02 x H atoms 1 mole H2O = 1 mol O atoms = 6.02 x O atoms Calculating the Mass and the Number of Atoms in a Given Number of Moles of an Element (1.) Silver (Ag) is used in jewelry and tableware but no longer in U.S. coins. How many grams of Ag are in mol of Ag? g Ag =? = mol Ag x g Ag = 3.69g Ag 1 mol Ag (2). Iron (Fe), the main component of steel, is the most important metal in industrial society. How many Fe atoms are in 95.8g of Fe? Fe atoms = 95.8 g Fe x 1 mol Fe x 6.022x10 23 atoms Fe 55.85g Fe 1 mol Fe = 1.04x10 24 atoms Fe (3). How many molecules of nitrogen dioxide are in 8.92 g of nitrogen dioxide? 1 mol NO2 6.02x10 molcs NO2=8.92g 23 molec NO2 NO g NO2 1 mol NO2 = 1.17x10 23 molecules NO2

4 What s In A Chemical Formula? Urea, (NH2)2CO, is a nitrogen containing compound used as a fertilizer around the globe? Calculate the following for 25.6 g of urea: a) the molar mass of urea? b) the number of moles of urea in 25.6 g urea? b) # of molecules of urea in 25.6 g of urea? c) # hydrogen atoms present in 25.6 g of urea. Solution To Urea Problem 1. Calculate the molar mass (MM) of urea, (NH2)2CO MM(NH2)2CO = 2 x MN + 4 x MH + MC + MO MM(NH2)2CO = (2 x 14.07g) + 4 (1.007g) g g MM(NH2)2CO = g 2. # moles of (NH2)2CO in 25.6 g Mol (NH 2 ) 2 CO = 25.6 g (NH 2 ) 2 CO 1 mol (NH 2 ) 2 CO g (NH 2 ) 2 CO = mol (NH 2 ) 2 CO 3. # molecules of (NH2)2CO in 25.6 g Molec urea = mol urea molecu urea 1 mol urea = molecu urea 4. # H atoms in 25.6 g (NH2)2CO #H atoms = mol urea 4 mol Hatoms 1 mol urea H atoms = atoms 1 mol urea Borax is the common name of a mineral sodium tetraborate, an industrial cleaning adjunct, Na2B4O7. You are given 20.0 g of borax... (a) what is the formula mass of Na2B4O7 (b) how many moles of borax is 20.0 g? (c) how many moles of boron are present in 20.0 g Na2B4O7? (d) how many grams of boron are present in 20.0 g Na2B4O7? (e) how many atoms of B are present in 20.0g? (f) how many atoms of O are present in 20.0g? (g) how many grams of atomic oxygen are present? Borax, Na2B4O7, is the common name of a sodium tetraborate, an industrial cleaning adjunct. Suppose you are given 20.0 g of borax: Solution: (a) The formula mass of Na2B4O7 is (2! 23.0) + (4! 10.8) + (7! 16.0) = g. b) # mol borax = (20.0 g borax) / (201.2 g mol 1 ) = = 0.01 mol of borax, c) # mol B = 20.0 g borax)/(201.2 g mol 1 ) X 4 mol B/ 1 mol borax = 0.40 mol of B. d) # g B = (0.40 mol)! (10.8 g B/ mol B) = 4.3 g B e) # atoms B = 0.40 mol B x 6.02 X atoms B/1 mol B = 2.41 X atoms B f) # g O = 20.0 g borax)/(201.2 g mol 1 ) X 7 mol O/ 1 mol borax x g O/1 mol O = 11.1 g O A chemical formula determines the % mass of each element in a compound. n x molar mass of element molar mass of compound x 100% n is the number of moles of an element in 1 mole of the compound. Example: C 2 H 4 O2 Molar mass = g/mole C 2 H 4 O2 2 x (12.01 g) %C = x 100% = 40.0% g 4 x (1.008 g) %H = x 100% = 6.714% g 2 x (16.00 g) %O = x 100% = 53.28% g 40.0% % % = 100.0% An empirical formula shows the simplest most reduced whole-number ratio of the atoms in a compound. A molecular formula shows the whole number ratio of an actual known molecule. molecular H 2 O C 6 H 12 O 6 C 12 H 24 O 12 C 18 H 36 O 18 O 3 empirical H 2 O CH 2 O CH 2 O CH 2 O O N 2 H 4 NH 2 N 8 H 16 NH 2

If we know the chemical formula of a compound, we can determine the % mass of its elements and vis versa. All of the compounds below have the same % by mass and the same empirical formula!

Molecular Formula CH 2 O C 2 H 4 O 2 C 3 H 6 O 3 C 4 H 8 O 4 C 5 H 10 O 5 C 6 H 12 O 6 Whole-Number Multiple 1 2 3 4 5 6 M (g/mol) 30.03 60.05 90.09 120.10 150.13 180.

5 If we know the chemical formula of a compound, we can determine the % mass of its elements and vis versa. All of the compounds below have the same % by mass and the same empirical formula! All have the same % by mass! % Mass Element %C = a% %H = b% %O = c% Molar Mass Empirical Formula C x H y Oz Name formaldehyde acetic acid lactic acid erythrose ribose glucose 40.0% C 6.71% H 53.3% O. Molecular Formula CH 2 O C 2 H 4 O 2 C 3 H 6 O 3 C 4 H 8 O 4 C 5 H 10 O 5 C 6 H 12 O 6 Whole-Number Multiple M (g/mol) Use or Function disinfectant; biological preservative acetate polymers; vinegar(5% soln) sour milk; forms in exercising muscle part of sugar metabolism component of nucleic acids and B 2 major energy source of the cell If we know the % mass of elements in a compound we can determine the empirical formula. With molar mass we get molecular formula GIVEN Molar Mass Molecular formula Determining the Empirical Formula from Masses of Elements Elemental analysis of a sample of an ionic compound gave the following results: 2.82 g of Na, 4.35 g of Cl, and 7.83 g of O. Determine the empirical formula and the name of this compound? Assume 100 g sample Calculate mole ratio Molar Mass Determining the Empirical Formula from Masses of Elements (Elemental Analysis) Elemental analysis of a sample of an ionic compound gave the following results: 2.82 g of Na, 4.35 g of Cl, and 7.83 g of O. Determine the empirical formula and the name of this compound? SOLUTION: 2.82 g Na x mol Na = mol Na g Na 4.35 g Cl x mol Cl = mol Cl g Cl 7.83 g O x mol O g O = mol O Determining a Molecular Formula from Elemental Analysis and Molar Mass Dibutyl succinate is an insect repellent used against household ants and roaches. Elemental analysis or analysis indicates that % mass of the composition is 62.58% C, 9.63% H and 27.79% O. Its experimentally determined molecular mass is 230 u. What are the empirical and molecular formulas of dibutyl succinate? Na 1 Cl 1 O 3.98 NaClO 4 NaClO 4 is sodium perchlorate.

6 Step 1: Determine the mass of each element. Assume a 100 gram sample and use the given data we have: C g H 9.63 g O g Step 2: Convert masses to amounts in moles. Step 3: Write a tentative empirical formula. C 5.21 H 9.55 O 1.74 Step 4: Convert to small whole numbers. Divide by smallest number of moles C 2.99 H 5.49 O Step 5: Convert to a small whole number ratio. Multiply by 2 to get C 5.98 H O 2 The empirical formula is C 6 H 11 O 2 Empirical formula mass = 6(12.01) (11) + 2 (16.00) = 115 u. Step 6: Now using the empirical formula mass and molecular mass together determine the molecular formula. Empirical formula mass is 115 u. Molecular formula mass is 230 u. n = Molecular mass/empirical mass = 230 amu/115 amu = 2 The molecular formula is C 12 H 22 O 4 Determining a Molecular Formula from Elemental Analysis and Molar Mass During physical activity, lactic acid (M = g/mol) forms in muscle tissue and is responsible for muscle soreness at fatigue. Elemental analysis shows that this compound contains 40.0 mass% C, 6.71 mass% H, and 53.3 mass% O. (a) Determine the empirical formula of lactic acid. (b) Determine the molecular formula. Understand what is asked: What is the formula CxHyOz Mass Percent Empirical Formula Molecular Mass Molecular Formula Determining a Molecular Formula from Elemental Analysis and Molar Mass 1. Assume there are 100. g of lactic acid then use % mass: 40.0 g C 1 mol C 6.71 g H 1 mol H 53.3 g O 12.01g C g H 1 mol O g O 3.33 mol C 6.66 mol H 3.33 mol O 2. The red numbers are the number of moles of atoms in lactic acid. This is what we use in the formula C 3.33 H 6.66 O 3.33 C 3.33 H 6.66 O molar mass of lactate mass of CH 2 O CH 2 O g g empirical formula 3. The molecular formula will be a whole number multiple of the empirical formula determined BY THE MOLAR MASS ratio 3 C 3H 6 O 3 is the molecular formula Chemical equations are symbolic representations of what happens in a chemical reaction. Only balanced chemical equations contain useful stoichiometric conversion factors. CH4(g) + O2(g) CO2(g) + H2O(g) unbalanced => No mass conservation NH3 + O2 ===> NO + H2 1 moles NH3 = 1 moles O2 Not Balanced & NOT TRUE! CH4(g) + 2O2(g) CO2(g) + 2H2O(g) 6NH3 + 3O2 ===> 6NO + 9H2 Balance first and ITʼs VALID! + Reactants Yields Products Correct Stoichiometric Conversion Factors 6 mol NH3 = 3 mol O2 6 mol NH3 = 6 mol NO 6 mol NH3 = 9 mol H2 3 mol O2 = 6 mol NO 3 mol O2 = 9 mol H2 6 mol NO = 9 mol H2

7 We balance equations using trial and error! Solutions Na3PO4(aq) + HCl(aq) ==> H3PO4(aq) + NaCl(aq) Na3PO4(aq) + 3HCl(aq) ====> H3PO4(aq) + 3NaCl(aq) Ba(OH)2(aq) + HCl(aq) ==> H2O(l) + BaCl2(aq) Ba(OH)2(aq) + 2HCl(aq) ====> 2H2O(l) + BaCl2(aq) C7H14 + O2 ===> H2O(l) + CO2(g) 2C7H O2 ====> 14H2O(l) + 14CO2(g) To learn how to balance equations quickly for Exams you have to practice! Try it. Na2SO4 (s) + C(s) Na + H2O Mg3N2(s) + H2O(l) Na2S (s) + CO(g) NaOH + H2 (g) Mg(OH)2 (s) + NH3(g) A balanced chemical equation contains a lot of very useful chemical information. Learn it and everything gets easy! molecules mass of atoms C 3 H 8 (g) + 5O 2 (g) 1 molecule C 3 H molecules O amu C 3 H amu O 2 3CO 2 (g) + 4H 2 O(g) 3 molecules CO molecules H 2 O amu CO amu H 2 O H2S (g) + SO2(g) S (s) + H2O(l) amount (mol) 1 mol C 3 H mol O 2 3 mol CO mol H 2 O CO2 (g) + KOH(s) K2CO3 (g) + H2O(s) mass (g) g C 3 H g O g CO g H 2 O total mass (g) g g Some equations are harder than others..practice! Example: Ethane, C2H6, reacts (is combusted are key words) with O2 to form CO2 and H2O. Write a balanced equation for this reaction. 1. Write the correct formula(s) for reactants and products. C 2 H 6 + O 2 CO 2 + H 2 O 2. Start by balancing those elements that appear in only one reactant and one product. C 2 H 6 + O 2 CO 2 + H 2 O start with C or H but not O 2 carbon on left 1 carbon on right multiply CO 2 by 2 C 2 H 6 + O 2 6 hydrogen on left C 2 H 6 + O 2 2CO 2 + H 2 O 2 hydrogen on right 2CO 2 + 3H 2 O multiply H 2 O by 3 4. Balance those elements that appear in two or more reactants or products. C 2 H 6 + O 2 2CO 2 + 3H 2 O 2 O on left 4 O + 3 O = 7 oxygen on right C 2 H O 2 2CO 2 + 3H 2 O multiply O 2 by 7 2 remove fraction 2C 2 H 6 + 7O 2 4CO 2 + 6H 2 O multiply by 2

8 4. Balance those elements that appear in two or more reactants or products. C 2 H 6 + O 2 2 O on left 4 O 2CO 2 + 3H 2 O C 2 H O 2 2CO 2 + 3H 2 O 2 2C 2 H 6 + 7O O = 7 oxygen on right 4CO 2 + 6H 2 O multiply O 2 by 7 2 remove fraction multiply both sides by 2 5. Check to make sure that you have the same number of each type of atom on both sides of the equation. 2C 2 H 6 + 7O 2 4CO 2 + 6H 2 O A balanced chemical equation contains a lot of very useful chemical information. Learn it and everything gets easy! molecules mass of atoms amount (mol) mass (g) total mass (g) C 3 H 8 (g) + 5O 2 (g) 1 molecule C 3 H molecules O amu C 3 H amu O 2 1 mol C 3 H mol O g C 3 H g O g 3CO 2 (g) + 4H 2 O(g) 3 molecules CO molecules H 2 O amu CO amu H 2 O 3 mol CO mol H 2 O g CO g H 2 O g How To Master Stoichiometry! 1. Always write a balanced chemical equation. 2. Work in moles---not masses...we need to count atoms and molecules using the mole connection to mass. 3. Use dimensional analysis correctly. How many CO molecules are required to react with 25 formula units of Fe 2 O 3 as shown below in the balanced equation? Fe2O3 (s) + 3CO(g) 2Fe(s) + 3CO2(g) Grams of Reactant Molar Mass Moles of Reactant balanced equation Grams of Product Moles of Product Molar Mass How many iron atoms can be produced by the reaction of 2.50 x 10 5 formula units of iron (III) oxide with excess carbon monoxide? What mass of CO is required to react completely with 146 g of iron (III) oxide? Fe2O3 (s) + 3CO(g) 2Fe(s) + 3CO2(g) Fe2O3 (s) + 3CO(g) 2Fe(s) + 3CO2(g) # Fe atoms = = fu Fe 2 O 3 2 F e atoms 1 fu Fe 2 O 3 = F e atoms

How many grams of iron (III) oxide react with excess carbon monoxide if the carbon dioxide produced by the reaction had a mass of 8.65 grams? key riff!

540 mole of iron (III) oxide with excess carbon monoxide? will run out first excess Fe2O3 (s) + 3CO(g) key riff! It tells you one reactant is in excess and the other is not!

The limiting reagent is the reactant that is runs out (or is consumed) and dictates the amount of product that can be formed.

9 How many grams of iron (III) oxide react with excess carbon monoxide if the carbon dioxide produced by the reaction had a mass of 8.65 grams? key riff! It tells you one reactant is in excess and the other is not! Fe2O3 (s) + 3CO(g) 2Fe(s) + 3CO2(g) What mass of carbon dioxide can be produced by the reaction of mole of iron (III) oxide with excess carbon monoxide? will run out first excess Fe2O3 (s) + 3CO(g) key riff! It tells you one reactant is in excess and the other is not! 2Fe(s) + 3CO2(g) What mass of carbon dioxide can be produced by the reaction of mole of iron (III) oxide with excess carbon monoxide? The limiting reagent is the reactant that is runs out (or is consumed) and dictates the amount of product that can be formed. Fe2O3 (s) + 3CO(g) 2Fe(s) + 3CO2(g) Which reactant is the limiting reagent? It s the same in chemistry. We must count the number of each reactant (via moles) and see which is limiting--it s not how much they weigh! We deal with limiting reagents all the time, we just don t give it a buzzword like chemists do. Reactants Product Do You Understand Limiting Reagent II? If 25.0 g CH 4 is combusted with 40.0 g O 2, which reactant is the limiting reactant? Note the absence of excess which tells us it is not a limiting reagent problem! There are 2 reactant masses in the problem = limiting reagent! There are two ways you can calculate the answer. Method 1: For both reactants, use balanced equation & stoichiometric factors and compute the amount of any product formed for both (I teach this method!) Number of Copies Possible 87 copies 83 copies 168/2 = /4 = 82 Method 2: Pick one of the reactant and compute how much of the other reactant you need and compare with the given amount.

10 If 25.0 g CH 4 is combusted with 40.0 g O 2, which reactant is the limiting reactant? CH 4 (g) + 2 O 2 (g) ""# CO 2 (g) + 2 H 2 O(g) Method 1 (Calculating the # moles of product formed by each reactant to determine which reactant makes the least amount) 1. Let s use the amount of CO2 formed as our yardstick of how much product can be made (we could chose H2O). mol CO 2 = 25.0 g CH 4 1 mol CH g CH 4 1 mol CO 2 1 mol CH 4 = mol CO 2 mol CO 2 = 40.0 g O 2 1 mol O g O 2 1 mol CO 2 2 mol O 2 = mol CO 2 O2 must be the limiting reagent as the amount of CO2 produced is the least amount of product! If 25.0 g CH 4 is combusted with 40.0 g O 2, which reactant is the limiting reactant? CH 4 (g) + 2 O 2 (g) ""# CO 2 (g) + 2 H 2 O(g) Method 1I (Directly comparing amounts of reactants given in the problem to which is the limiting reagent--less steps) g O 2 needed = 25.0 g CH 4 1 mol CH g CH 4 2 mol O 2 1 mol CH g O 2 1 mol O 2 = g O 2 O2 is the limiting reagent as we need g of it but we are are only given 40.0 g O2! Thus, the amount of product that can be formed is determined by the amount of O2 not by the amount of methane, CH4. Another stoichiometry example from Silberberg Copper metal is obtained from copper(i) sulfide containing ores in multistep-extractive process. After grinding the ore into fine rocks, it is heated with oxygen gas forming powdered cuprous oxide and gaseous sulfur dioxide. (0) Write a balanced chemical equation for this process (a) How many moles of molecular oxygen are required to fully roast 10.0 mol of copper(i) sulfide? (b) How many grams of sulfur dioxide are formed when 10.0 mol of copper(i) sulfide is roasted? (c) How many kilograms of oxygen are required to form 2.86 kg of copper(i) oxide? (0) Write a balanced chemical equation for this process Cu 2 S(s) + O 2 (g) 2Cu 2 S(s) + 3O 2 (g) Cu 2 O(s) + SO 2 (g) (a) How many moles of oxygen are required to roast 10.0 mol of copper(i) sulfide? 3 mol O mol O 2 2 mol Cu 2 S = 15.0 mol O 2 =? = 10.0 mol Cu 2 S x 2 (b) How many grams of sulfur dioxide are formed when 10.0 mol of copper(i) sulfide is roasted? g SO 2 = 10.0 mol Cu 2 S x 2mol SO 2 2mol Cu 2 S 2Cu 2 O(s) + 2SO 2 (g) x 64.07g SO 2 1 mol SO 2 unbalanced = 641g SO 2 2Cu 2 S(s) + 3O 2 (g) 2Cu 2 O(s) + 2SO 2 (g) (c) How many kilograms of oxygen are required to form 2.86 kg of copper(i) oxide? kg O2 = 2.86 kg Cu 2 O x 103 g Cu 2 O kg Cu 2 O x 1 mol Cu 2 O x 3mol O 2 x g Cu 2 O 2mol Cu 2 O kg O 2 = = 1 kg O g O x g O 2 1 mol O 2 Do You Understand Limiting Reagents? Phosphorus trichloride is a commercially important compound used in the manufacture of pesticides. It is made by the direct combination of phosphorus P4 and gaseous molecular chlorine. Suppose 323 g of chlorine is combined with 125 g P4. Determine the amount of phosphorous trichloride that can be produced when these reactants are combined. NOTE: 2 Reactants With Masses => Limiting Reagent

11 P 4 (s) + Cl 2 (g) " PCl 3 (l) P 4 (s) + 6Cl 2 (g) " 4PCl 3 (l) Step 1. Convert words to formulas Step 2. Balance Step 3. Determine reactant that produces the least product. mol PCl 3 = 323 g Cl 2 1 mol Cl g Cl 2 4 mol PCl 3 6 mol Cl 2 = 3.04mol PCl 3 mol PCl 3 = 125 g P 4 1 mol P g P 4 4 mol PCl 3 1 mol P 4 = 4.04mol PCl 3 Step 4. Cl2 is the limiting reagent and determines the amount of PCl3 g PCl 3 = 125 g P 4 1 mol P g P 4 4 mol PCl 3 6 molcl g PCl 3 1 mol PCl 3 = g PCl 3 Do You Understand Limiting Reagents? g of solid Al metal is reacted with g of iron(iii) oxide to produce iron metal and aluminum oxide. Calculate the mass of aluminum oxide formed. 1. Write a balanced equation for all problems 2. Two reactant masses and no excess = limiting reagent. 3. Work in moles (grams => moles => equation stoichiometry) 4. Determine maximum theoretical amount of product for both reactants. The limiting reagent is the one that produces the least. 124 g of Al are reacted with 601 g of Fe 2 O 3 2Al + Fe 2 O g Al x 1 mol Al 27.0 g Al x Al 2 O 3 + 2Fe g Al mol Al mol Al2SO3 produced 1 mol Al 2 O 3 2 mol Al g Al 2 O x 3 = 234 g Al 1 mol Al 2 O 2 O 3 3 When we do chemical reactions calculations in the class, they are ideal and give 100% product. This is the called the theoretical value. Real reactions have side-reactions which reduce the amount of product obtained vs the theoretical amount. We call that experimentally-determined value. g Fe 2 O 3 mol Fe 2 O 3 mol Al2SO3 produced 1 mol Fe 601 g 2 O g Al 2 O Fe2O3 x x 1 mol Al 2 O 3 x 3 = 383 g Al 160. g Fe 2 O 3 1 mol Al 2 O 2 O 1 mol Fe 3 2 O 3 3 Al make the least and is the limiting reagent! 234 g Al 2 O 3 can be produced A + B (reactants) D (side products) C (main product) The % Yield of a chemical reaction is the ratio of product mass obtained in the lab over the theoretical (i.e. calculated) X 100. % Yield = Actual Amount Theoretical Amount experimentally determined in lab x 100 from limiting reagent calculation Actual Amount actual amount of product obtained from a reaction in the lab. It s given in a word problem. Theoretical Amount is the amount of product that is calculated assuming all the limiting reagent reacts. Learning Check: Calculating Percent Yield Silicon carbide (SiC) is made by reacting silicon dioxide with powdered carbon (C) under high temperatures. Carbon monoxide is also formed as a by-product. Suppose kg of silicon dioxide is processed in the lab and 51.4 kg of SiC is recovered What is the percent yield of SiC from this process? Notice the word excess is missing and the amount of the other reactant. Must assume other reactant is excess!

Learning Check: Calculating Percent Yield SiO2(s) + C(s) SiO2(s) + 3C(s) SiC(s) + CO(g) 1. Converts words to formulas SiC(s) + 2CO(g) 2. Balance 3.

09 g SiO2 1 mol SiO2 kg SiC = 1664 mol SiCl Forms of Potential Energy Less Stable Physical properties of matter that depend on the Less Stable on the amount of matter are extensive properties.

73 kg SiC 1 mol SiC 1000 g SiC = 66.73 kg SiC Less Stable Less Stable 4.

0% kg Theoretical 66.73 kg Putting it all together: Limiting/Percent Yield A student reacts 30.0 g benzene, C6H6, with 65.0 g bromine, Br2, to prepare bromobenzene, C6H5Br in the lab (MW C6H6 = 78.

12 Learning Check: Calculating Percent Yield SiO2(s) + C(s) SiO2(s) + 3C(s) SiC(s) + CO(g) 1. Converts words to formulas SiC(s) + 2CO(g) 2. Balance 3. We are given one reactant, we must assume excess of the other (C) mol SiO2 = 102 kg SiO2 1 mol SiO2 1 mol SiC 103 g SiO2 = 1664 mol SiC 1 kg SiO g SiO2 1 mol SiO2 kg SiC = 1664 mol SiCl Forms of Potential Energy Less Stable Physical properties of matter that depend on the Less Stable on the amount of matter are extensive properties. Physical properties that do not change with mass are intensive properties. More Stable More Stable Gravity: PE gained when lifted Spring: stretched vs compressed g SiC 1 kg SiC = kg SiC 1 mol SiC 1000 g SiC = kg SiC Less Stable Less Stable 4. We get the actual from experiment and theoretical from calculation and plug them into the yield equation (units of mass should be the same) % Yield = kg Actual 51.4 kg 100 = 100 = = 77.0% 77.0% kg Theoretical kg Putting it all together: Limiting/Percent Yield A student reacts 30.0 g benzene, C6H6, with 65.0 g bromine, Br2, to prepare bromobenzene, C6H5Br in the lab (MW C6H6 = , C6H5Br , Br2 = ). After the reaction was complete, the student recovered 56.7 g C6H5Br. Determine the limiting reagent, the theoretical yield, and the overall % yield? More Stable Charge separation: More Stable Fuel Chemical Potential Learning Check: Calculating Percent Yield A student reacts 30.0 g benzene, C6H6, with 65.0 g bromine, Br2, to prepare bromobenzene, C6H5Br. (MW C6H6 = , C6H5Br , Br2 = ). After the reaction was complete, the student recovered 56.7 g C6H5Br. Determine the limiting reagent, the theoretical yield, and the overall % yield? Step 1. Converts words to formulas and balance the equation C6H6 + Br2 C6H5Br + HBr Step 2. Determine the reactant that produces the least product. 1. Write a balanced equation 2. Use stoichiometry in balanced equation 3. Find g product predicted limiting reagent actual yield/theoretical yield x Calculate percent yield Announcements Event: Exam 1 Coverage: Chapters 1-3 Date: July 18, 2013 Time: Evening 6-7:30PM Room: SOM 111 (Ching Tan Room) Materials Needed: A calculator and a few pens. A periodic table and scrap paper will be provided by the instructor. Multiple-Choice Practice From Blog Links Tab silberberg/student/olc/quiz.mhtml selfstudy.do?isbn= g C6 H5 Br = 30.0 g C6 H6 g C6 H5 Br = 65.0 g Br2 1 mol C6 H6 1 mol C6 H5 Br g C6 H5 Br = 60.3 g C6 H5 Br 78.1 g C6 H6 1 molc6 H6 1 mol C6 H5 Br 1 mol Br2 1 mol C6 H5 Br g C6 H5 Br = 63.8 g C6 H5 Br g Br2 1 mol Br2 1 mol C6 H5 Br Step 3. C6H6 is the limiting reagent g C6H5Br is theory yield % Yield = g Actual 56.7 g 100 = 100 = 94.0% g Theoretical 60.3 g Section 3.5 Fundamentals of Solution Stoichiometry Distribution of solute in solvent is uniform (mixed) Components do not separate on standing Not separable by filtration Solute/Solvent mix in ratios up to the solubility limit of solute

A solution is a homogenous mixture of a solvent plus a solute (focus is aqueous).

A solvent is the substance present in the larger amount----typically water in aqueous solutions.

5 Fundamentals of Solution Stoichiometry Seawater is a homogeneous mixture that has many dissolved solutes in a

2+ + Mg2+ Ca and K 2- SO4 35 grams of dissolved salts per kilogram of seawater --70+ dissolved components --6

solute present in a given quantity of solution.

can visualize solute particles in a solvent (solute) and solvent molecules not shown.

13 A solution is a homogenous mixture of a solvent plus a solute (focus is aqueous). The solute is the substance(s) dissolved in the solvent. A solvent is the substance present in the larger amount----typically water in aqueous solutions. Solution is the solute + solvent. g solution = g solute + g solvent Section 3.5 Fundamentals of Solution Stoichiometry Seawater is a homogeneous mixture that has many dissolved solutes in a water solvent Mg2+ Ca and K 2- SO4 35 grams of dissolved salts per kilogram of seawater dissolved components --6 make up >99% the solids Na+ Cl- Chemists express the concentration of a solution by declaring the amount of solute present in a given quantity of solution. Molar Mass M = molarity = moles of solute total liters of solution Solute + Solvent Molar Mass grams solute We can visualize solute particles in a solvent (solute) and solvent molecules not shown. Volume of solution moles solute Molarity 4-Basic Problem Types Using Molarity 1. Simple molarity calculation given mass and total volume (or permutation of this). Add Solvent Increasing Volume Decreases Concentration 2. Mass-Mole-Number of Molecules Involving Solutions 3. Dilution Problems (M1V1 = M2V2) 4. Stoichiometry With Solutions Concentrated Solution More solute particles per unit volume Dilute Solution More solute particles per unit volume

Calculate the molarity of a solution that contains 12.5 g of pure sulfuric acid (H2SO4) in 1.75 L of solution (Molar Mass H2SO4 = 98.

Identify the solute here? A Weigh the solid needed. Transfer the solid to a volumetric flask that contains about half the final volume of solvent. B Dissolve the solid thoroughly by swirling.

How many grams of KI solute does it contain (it meaning the entire 500. ml volume. M KI M KI volume KI moles KI grams KI How many grams of solute are in 1.75 L of 0.

ml x x x = 232 g KI 1000 ml 1 L soln 1 mol KI Calculating the Molarity of a Solution Sucrose has a molar mass of 342.29 g/mol.

14 Calculate the molarity of a solution that contains 12.5 g of pure sulfuric acid (H2SO4) in 1.75 L of solution (Molar Mass H2SO4 = 98.1g) M = molarity = moles of solute total liters of solution Preparing Solutions in the Laboratory Weigh the solid needed Dissolve the solid Add the solvent to final volume in glassware. Identify the solute here? A Weigh the solid needed. Transfer the solid to a volumetric flask that contains about half the final volume of solvent. B Dissolve the solid thoroughly by swirling. C Add solvent until the solution reaches its final volume. How many grams of KI is required to make 500. ml of a 2.80 M KI solution? REWORDED Or suppose I have 500. ml of a 2.80M KI solution. How many grams of KI solute does it contain (it meaning the entire 500. ml volume. M KI M KI volume KI moles KI grams KI How many grams of solute are in 1.75 L of M sodium monohydrogen phosphate? g of Na2HPO4 =? = 1.75 L soln X moles Na2HPO4 1 L soln X = 114 g Na 2 HPO g Na 2 HPO 4 1 mol Na 2 HPO 4 grams KI = 1 L 2.80 mol KI 166 g KI 500. ml x x x = 232 g KI 1000 ml 1 L soln 1 mol KI Calculating the Molarity of a Solution Sucrose has a molar mass of g/mol. It is a fine, white, odorless crystalline powder with a pleasing, sweet taste. What is the molarity of an aqueous solution made by placing 75.5 g of 85% pure sugar in ml of water? 85 g pure sug Mol sugar = 75.5 g impure 100. g impure M sugar = fix this slide for ang 1 mol sug = mol sug g sug mol pure sugar total volume solution = L = Preparing Solutions in the Laboratory How you would make up 1.00 L of 0.100M CuSO4? # moles CuSO4 = M x V = 1.0 L soln x mol CuSO4 1L mark g CuSO4 Dissolve completely = mol x CuSO4.5H2O g CuSO 4 =0.100 mol CuSO g CuSO 4 5H 2 O 1 mol CuSO 4 = g CuSO 4 Dilute to mark 0.100M CuSO4

15 What does 3.5 M FeCl3 mean? Given 2 liters of 0.20M Al2(SO4)3, 3.5 M FeCl3 = 3.5 moles FeCl3 1 Liter solution (a) what is the molarity of aluminum sulfate? (1) a homogeneous solution of 3.5 moles of dry 100% pure FeCl3 dissolved in 1.00 Liter total solution volume (not 1 L of liquid!). (3) Note: It does not mean 3.5 moles of FeCl3 is dissolved in 1.00 liter of water! (4) [Fe 3+ ] = 3.5M and [Cl - ] = 3 x 3.5 M (5) It can be used as a conversion factor (b) how many moles of aluminum ions are there in 2L of this solution? (c) what is the molarity of SO4 2- in this solution? (d) what is the molarity of Al 3+ in this solution In 2 liters of 0.20M Al2(SO4)3, (a) what is the molarity of aluminum sulfate (b) how many moles of aluminum are there (c) what is the molarity of aluminum ions and sulfate ions? Hydrochloric acid is sold commercially as a 12.0 M solution. How many moles of HCl are in ml of 12.0 M solution? (a) [Al2(SO4)3] = 0.20M (b) mol Al = 2 L X 0.20 mol Al x = 0.4 mol Al mol HCl = 1 L 12.0 mol HCl ml = 3.60 mol HCl 1000 ml 1 L soln (c) [Al 2+ ] = 2 x 0.20M and [SO4 2- ] = 3 x 0.20M Determine the mass of calcium nitrate required to prepare 3.50 L of M. Dilution is the procedure for preparing a less concentrated solution from a more concentrated solution. Remember this formula: M i V i = M f V f Moles of solute in Volume = Moles of solute after dilution (f)

How would you prepare 500.0 ml of 0.500M HCl from a stock solution of 12.1 M HCl? V i How many ml of stock are required?

16 How would you prepare ml of 0.500M HCl from a stock solution of 12.1 M HCl? V i How many ml of stock are required? Look at the picture carefully and you should see that the number of moles taken from the blue cube on the left (the concentrated stock solution) is the number of moles that ends up in the light white. M i! V i Mf! V f V f Stock 12.1M HCl M i mol HCl before dilution dilute to mark ml of 0.500M HCl M f Moles of solute in Volume M i V i M = n V = = Moles of solute after dilution (f) M f V f How would you prepare 60.0 ml of 0.2 M HNO 3 from a stock solution of 4.00 M HNO 3? 1) Use factor-label and information in problem 2) M i V i = M f V f easy to remember but very mechanical It fails often! Given: How would you prepare 0.80L of isotonic saline from a 6.0M stock solution? M i = 6.00M M f = 0.15M V f = 0.80 L V i =? L V i = M f V f M i M i V i = M f V f 0.15 M x 0.80M L = 6.00 M HNO3 20 ml of stock ml of water = L = ml of solution How would you prepare 60.0 ml of 0.2 M HNO 3 from a stock solution of 4.00 M HNO 3? Given: M i = 4.00 M f = V f = 0.06 L V i =? L If 10.0 ml of 12.0 M HCl is added to enough water to give 100. ml of solution, what is the concentration of the solution? V i = M f V f M i M i V i = M f V f M x L = = L = 3.0 ml 4.00 M HNO3 3 ml of acid + 57 ml of water = 60.0 ml of solution

17 Molarity ties the number of moles of solute to the volume of a solution. grams solute molar mass solute Moles of substance mass of solution Density of solution Volume of Solution Solution Stoichiometry How many milliliters of M NaHCO3 are needed to neutralize (react with) 18.0 ml of M HCl? HCl(aq) + NaHCO3(aq) => NaCl(aq) + H2O(l) + CO2(g) Volume of HCl Volume of NaHCO3 Molarity Molarity HCl Molarity NaHCO3 moles of solute total liters of solution Mole to Mole ratio How many milliliters of M NaHCO3 solution are needed to neutralize 18.0 ml of M HCl? HCl(aq) + NaHCO3(aq) => NaCl(aq) + H2O(l) + CO2(g) # mol HCl = MHCl x L = 0.100M HCl X 0.018L = 1.80 X 10-3 mol HCl # mol NaHCO3 = = mol HCl 1 mol NaHCO 3 1 miol HCl 1 L solution =.0144 L solution M NaHCO 3 Stoichiometry in Solution Specialized cells in the stomach release HCl to aid in digestion. If too much acid is released, the excess can cause heartburn and is sometimes neutralized with antacids. A common antacid is magnesium hydroxide, which reacts with the hydrochloric acid to form water and magnesium chloride solution. As a government chemist testing commercial antacids, suppose you use 0.10M HCl to simulate the acid concentration in the stomach. How many liters of stomach acid react with a tablet containing 0.10g of magnesium hydroxide? How many liters of stomach acid react with a tablet containing 0.10g of magnesium hydroxide? 1. Always translate nomenclature to chemical equation Mg(OH) 2 (s) + HCl(aq) Mg(OH) 2 (s) + 2HCl(aq) L HCl =? = MgCl 2 (aq) + H 2 O(l) MgCl 2 (aq) + 2H 2 O(l) unbalanced balanced 2. Work in moles and use the stoichiometric factors g Mg(OH) 2 1 mol Mg(OH) 2 2 mol HCl 1 L HCl g Mg(OH) 2 1 mol Mg(OH) mol HCl = One of the solids present in photographic film is silver bromide. It is prepared by mixing silver nitrate with calcium bromide giving insoluble silver bromide and soluble calcium nitrate. CaBr2 + 2AgNO3 ==> 2AgBr + Ca(NO3)2 How many milliliter of 0.125M CaBr2 must be used to react with the solute in 50.0 ml of 0.115M AgNO3? = 3.4 x 10-2 L HCl

18 One of the solids present in photographic film is silver bromide. It is prepared by mixing silver nitrate with calcium bromide giving insoluble silver bromide and soluble calcium nitrate. CaBr2 + 2AgNO3 ==> 2AgBr + Ca(NO3)2 How many milliliter of 0.125M CaBr2 must be used to react with the solute in 50.0 ml of 0.115M AgNO3? ml CaBr 2 =0.050 Lsoln mol AgNO 3 1 mol CaBr 2 1 L CaBr ml} 1 Lsoln 2 mol AgNO mol CaBr 2 1 L = 23.0 mlcabr Limiting-Reactant Problems in Solution Mercury and its compounds have many uses, from fillings for teeth (as an alloy with silver, copper, and tin) to the industrial production of chlorine. Suppose 0.050L of 0.010M mercury(ii) nitrate reacts with 0.020L of 0.10M sodium sulfide forming mercury(ii) sulfide. How many grams of mercury(ii) sulfide can form? Step 1: Words to balanced chemical equation Step 2: Is it limiting reagent? Yes or No Step 3: Use given information, balanced equation and good dimensional analysis technique and compute g HgS formed. Step 4: Does it make sense? Suppose 0.050L of 0.010M mercury(ii) nitrate reacts with 0.020L of 0.10M sodium sulfide forming mercury(ii) sulfide. How many grams of mercury(ii) sulfide can form? Hg(NO 3 ) 2 (aq) + Na 2 S(aq) HgS(s) + 2NaNO 3 (aq) g HgS = L Hg(NO 3 ) mol Hg(NO 3 ) 2 1 mol HgS g HgS = 0.12 g HgS 1 L Hg(NO 3 ) 2 1 mol Hg(NO 3 ) 2 1 mol HgS g HgS = L Na 2 S 0.10 mol Na 2 S 1 L Na 2 S 1 mol HgS 1 mol Na 2 S g HgS 1 mol HgS = 0.47 g HgS Hg(NO Hg(NO 3 ) 2 (aq) is the limiting reagent and 0.12 g HgS can be 3 ) 2 (aq) is the limiting reagent and 0.12 g HgS can be produced produced from from this this reaction. reaction.

Chapter 3. Stoichiometry of Chemical Formulas And Equations. ? grams +? grams. ? grams

Chapter 3. Stoichiometry of Chemical Formulas And Equations. ? grams +? grams. ? grams Chapter 3 Stoichiometry of Chemical Formulas And Equations A chemical formula of a compound indicates the number ratio of combining atoms. Subscript: indicates the # of bonded H atoms Leading coefficients: