Stoichiometry Chapter 3 CHEM110 PDF

Summary

This document appears to be chapter 3 from a chemistry textbook, specifically on the topic of stoichiometry. It introduces concepts like atomic mass, molar mass, and the mole, along with calculations related to these topics. It's intended for an undergraduate-level chemistry course.

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Stoichiometry Chapter 3 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display. Micro World Macro World atoms & molecules grams Atomic mass is the mass of an atom in atomic mass units (amu)...

Stoichiometry Chapter 3 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display. Micro World Macro World atoms & molecules grams Atomic mass is the mass of an atom in atomic mass units (amu) By definition: 1 atom 12C “weighs” 12 amu On this scale 1H = 1.008 amu 16O = 16.00 amu 2 The average atomic mass is the weighted average of all of the naturally occurring isotopes of the element. 3 Example 3.1 Copper, a metal known since ancient times, is used in electrical cables and pennies, among other things. The atomic masses of its two stable isotopes, (69.09 percent) and (30.91 percent), are 62.93 amu and 64.9278 amu, respectively. Calculate the average atomic mass of copper. The relative abundances are given in parentheses. Example 3.1 Strategy Each isotope contributes to the average atomic mass based on its relative abundance. Multiplying the mass of an isotope by its fractional abundance (not percent) will give the contribution to the average atomic mass of that particular isotope. Example 3.1 Solution First the percents are converted to fractions: 69.09 percent to 69.09/100 or 0.6909 30.91 percent to 30.91/100 or 0.3091. We find the contribution to the average atomic mass for each isotope, then add the contributions together to obtain the average atomic mass. (0.6909) (62.93 amu) + (0.3091) (64.9278 amu) = 63.55 amu Example 3.1 Check The average atomic mass should be between the two isotopic masses; therefore, the answer is reasonable. Note that because there are more than isotopes, the average atomic mass is closer to 62.93 amu than to 64.9278 amu. Average atomic mass (63.55) 8 The Mole (mol): A unit to count numbers of particles Dozen = 12 Pair = 2 The mole (mol) is the amount of a substance that contains as many elementary entities as there are atoms in exactly 12.00 grams of 12C 1 mol = NA = 6.0221415 x 1023 Avogadro’s number (NA) 9 eggs Molar mass is the mass of 1 mole of shoes in grams marbles atoms 1 mole 12C atoms = 6.022 x 1023 atoms = 12.00 g 1 12C atom = 12.00 amu 1 mole 12C atoms = 12.00 g 12C 1 mole lithium atoms = 6.941 g of Li For any element atomic mass (amu) = molar mass (grams) 10 One Mole of: C S Hg Cu Fe 11 1 12C atom 12.00 g 1.66 x 10-24 g x 23 12 = 12.00 amu 6.022 x 10 C atoms 1 amu 1 amu = 1.66 x 10-24 g or 1 g = 6.022 x 1023 amu M = molar mass in g/mol NA = Avogadro’s number 12 Example 3.2 Zinc (Zn) is a silvery metal that is used in making brass (with copper) and in plating iron to prevent corrosion. How many grams of Zn are in 0.356 mole of Zn? Zinc Example 3.2 Strategy We are trying to solve for grams of zinc. What conversion factor do we need to convert between moles and grams? Arrange the appropriate conversion factor so that moles cancel and the unit grams are obtained for your answer. Example 3.2 Solution The conversion factor needed to convert between moles and grams is the molar mass. In the periodic table (see inside front cover) we see the molar mass of Zn is 65.39 g. This can be expressed as 1 mol Zn = 65.39 g Zn From this equality, we can write two conversion factors The conversion factor on the right is the correct one. Example 3.2 Moles will cancel, leaving unit of grams for the answer. The number of grams of Zn is Thus, there are 23.3 g of Zn in 0.356 mole of Zn. Check Does a mass of 23.3 g for 0.356 mole of Zn seem reasonable? What is the mass of 1 mole of Zn? Example 3.3 Sulfur (S) is a nonmetallic element that is present in coal. When coal is burned, sulfur is converted to sulfur dioxide and eventually to sulfuric acid that gives rise to the acid rain phenomenon. How many atoms are in 16.3 g of S? Elemental sulfur (S8) consists of eight S atoms joined in a ring. Example 3.3 Strategy The question asks for atoms of sulfur. We cannot convert directly from grams to atoms of sulfur. What unit do we need to convert grams of sulfur to in order to convert to atoms? What does Avogadro’s number represent? Example 3.3 Solution We need two conversions: first from grams to moles and then from moles to number of particles (atoms). The first step is similar to Example 3.2. Because 1 mol S = 32.07 g S the conversion factor is Avogadro’s number is the key to the second step. We have 1 mol = 6.022 × 1023 particles (atoms) Example 3.3 and the conversion factors are The conversion factor on the left is the one we need because it has number of S atoms in the numerator. We can solve the problem by first calculating the number of moles contained in 16.3 g of S, and then calculating the number of S atoms from the number of moles of S: Example 3.3 We can combine these conversions in one step as follows: Thus, there are 3.06 × 1023 atoms of S in 16.3 g of S. Check Should 16.3 g of S contain fewer than Avogadro’s number of atoms? What mass of S would contain Avogadro’s number of atoms? Example 3.4 Silver (Ag) is a precious metal used mainly in jewelry. What is the mass (in grams) of one Ag atom? Silver rings and the solid-state structure of silver. Example 3.4 Strategy The question asks for the mass of one Ag atom. How many Ag atoms are in 1 mole of Ag? What is the molar mass of Ag? Example 3.4 Solution Because 1 mole of Ag atom contains 6.022 × 1023 Ag atoms and has a mass of 107.9 g, we can calculate the mass of one Ag atom as follows: 1 mol Ag 107.9 g -22 g 1 Ag atom × × = 1.792 × 10 6.022 × 1023 Ag atoms 1 mol Ag Check Because 6.022 × 1023 atoms of Ag have a mass of 107.9 g, one atom of Ag should have a significantly smaller mass. Molecular mass (or molecular weight) is the sum of the atomic masses (in amu) in a molecule. 1S 32.07 amu 2O + 2 x 16.00 amu SO2 SO2 64.07 amu For any molecule molecular mass (amu) = molar mass (grams) 1 molecule SO2 = 64.07 amu 1 mole SO2 = 64.07 g SO2 25 Example 3.5 Calculate the molecular masses (in amu) of the following compounds: (a) sulfur dioxide (SO2), a gas that is responsible for acid rain (b) caffeine (C8H10N4O2), a stimulant present in tea, coffee, and cola beverages Example 3.5 Strategy How do atomic masses of different elements combine to give the molecular mass of a compound? Solution To calculate molecular mass, we need to sum all the atomic masses in the molecule. For each element, we multiply the atomic mass of the element by the number of atoms of that element in the molecule. We find atomic masses in the periodic table (inside front cover). (a) There are two O atoms and one S atom in SO2, so that molecular mass of SO2 = 32.07 amu + 2(16.00 amu) = 64.07 amu Example 3.5 (b) There are eight C atoms, ten H atoms, four N atoms, and two O atoms in caffeine, so the molecular mass of C8H10N4O2 is given by 8(12.01 amu) + 10(1.008 amu) + 4(14.01 amu) + 2(16.00 amu) = 194.20 amu Example 3.6 Methane (CH4) is the principal component of natural gas. How many moles of CH4 are present in 6.07 g of CH4? Example 3.6 Strategy We are given grams of CH4 and asked to solve for moles of CH4. What conversion factor do we need to convert between grams and moles? Arrange the appropriate conversion factor so that grams cancel and the unit moles are obtained for your answer. Example 3.6 Solution The conversion factor needed to convert between grams and moles is the molar mass. First we need to calculate the molar mass of CH4, following the procedure in Example 3.5: molar mass of CH4 = 12.01 g + 4(1.008 g) = 16.04 g Because 1 mol CH4 = 16.04 g CH4 the conversion factor we need should have grams in the denominator so that the unit g will cancel, leaving the unit mol in the numerator: Example 3.6 We now write Thus, there is 0.378 mole of CH4 in 6.07 g of CH4. Check Should 6.07 g of CH4 equal less than 1 mole of CH4? What is the mass of 1 mole of CH4? Example 3.7 How many hydrogen atoms are present in 25.6 g of urea [(NH2)2CO], which is used as a fertilizer, in animal feed, and in the manufacture of polymers? The molar mass of urea is 60.06 g. urea Example 3.7 Strategy We are asked to solve for atoms of hydrogen in 25.6 g of urea. We cannot convert directly from grams of urea to atoms of hydrogen. How should molar mass and Avogadro’s number be used in this calculation? How many moles of H are in 1 mole of urea? Example 3.7 Solution To calculate the number of H atoms, we first must convert grams of urea to moles of urea using the molar mass of urea. This part is similar to Example 3.2. The molecular formula of urea shows there are four moles of H atoms in one mole of urea molecule, so the mole ratio is 4:1. Finally, knowing the number of moles of H atoms, we can calculate the number of H atoms using Avogadro’s number. We need two conversion factors: molar mass and Avogadro’s number. Example 3.7 We can combine these conversions into one step: = 1.03 × 1024 H atoms Check Does the answer look reasonable? How many atoms of H would 60.06 g of urea contain? Formula mass is the sum of the atomic masses (in amu) in a formula unit of an ionic compound. 1Na 22.99 amu NaCl 1Cl + 35.45 amu NaCl 58.44 amu For any ionic compound formula mass (amu) = molar mass (grams) 1 formula unit NaCl = 58.44 amu 1 mole NaCl = 58.44 g NaCl 37 Mass Spectrometer Heavy Light Light Heavy Mass Spectrum of Ne 38 Percent composition of an element in a compound = n x molar mass of element x 100% molar mass of compound n is the number of moles of the element in 1 mole of the compound 2 x (12.01 g) %C = x 100% = 52.14% 46.07 g 6 x (1.008 g) %H = x 100% = 13.13% 46.07 g 1 x (16.00 g) %O = x 100% = 34.73% 46.07 g C2H6O 52.14% + 13.13% + 34.73% = 100.0% 39 Example 3.8 Phosphoric acid (H3PO4) is a colorless, syrupy liquid used in detergents, fertilizers, toothpastes, and in carbonated beverages for a “tangy” flavor. Calculate the percent composition by mass of H, P, and O in this compound. H3PO4 Example 3.8 Strategy Recall the procedure for calculating a percentage. Assume that we have 1 mole of H3PO4. The percent by mass of each element (H, P, and O) is given by the combined molar mass of the atoms of the element in 1 mole of H3PO4 divided by the molar mass of H3PO4, then multiplied by 100 percent. Example 3.8 Solution The molar mass of H3PO4 is 97.99 g. The percent by mass of each of the elements in H3PO4 is calculated as follows: Check Do the percentages add to 100 percent? The sum of the percentages is (3.086% + 31.61% + 65.31%) = 100.01%. The small discrepancy from 100 percent is due to the way we rounded off. Percent Composition and Empirical Formulas 43 Example 3.9 Ascorbic acid (vitamin C) cures scurvy. It is composed of 40.92 percent carbon (C), 4.58 percent hydrogen (H), and 54.50 percent oxygen (O) by mass. Determine its empirical formula. Example 3.9 Strategy In a chemical formula, the subscripts represent the ratio of the number of moles of each element that combine to form one mole of the compound. How can we convert from mass percent to moles? If we assume an exactly 100-g sample of the compound, do we know the mass of each element in the compound? How do we then convert from grams to moles? Example 3.9 Solution If we have 100 g of ascorbic acid, then each percentage can be converted directly to grams. In this sample, there will be 40.92 g of C, 4.58 g of H, and 54.50 g of O. Because the subscripts in the formula represent a mole ratio, we need to convert the grams of each element to moles. The conversion factor needed is the molar mass of each element. Let n represent the number of moles of each element so that Example 3.9 Thus, we arrive at the formula C3.407H4.54O3.406, which gives the identity and the mole ratios of atoms present. However, chemical formulas are written with whole numbers. Try to convert to whole numbers by dividing all the subscripts by the smallest subscript (3.406): where the sign means “approximately equal to.” This gives CH1.33O as the formula for ascorbic acid. Next, we need to convert 1.33, the subscript for H, into an integer. Example 3.9 This can be done by a trial-and-error procedure: 1.33 × 1 = 1.33 1.33 × 2 = 2.66 1.33 × 3 = 3.99 < 4 Because 1.33 × 3 gives us an integer (4), we multiply all the subscripts by 3 and obtain C3H4O3 as the empirical formula for ascorbic acid. Check Are the subscripts in C3H4O3 reduced to the smallest whole numbers? Example 3.10 The demand for lithium has increased in recent years due to its use in lightweight rechargeable batteries for electronic devices and electric vehicles. One source of lithium is the mineral spodumene (LiAsSi2O6), which is also a prized gemstone. Calculate the kilograms of Li that could be obtained from 2.73 × 104 kg of spodumene. Spodumene Example 3.10 Strategy Spodumene is composed of Li, Al, Si, and O. The mass due to Li is based on its percentage by mass in the compound. How do we calculate mass percent of an element? Solution The molar masses of Li and LiAlSi2O6 are 6.941 g and 186.1 g, respectively. The mass percent of Li is therefore molar mass of Li % Li = × 100% molar mass of LiAlSi2O6 6.941 g = × 100% = 3.730 % 186.1 g Example 3.10 To calculate the mass of Li in a 2.73 × 104 kg sample of LiAlSi2O6, we need to convert the percentage to a fraction (that is, convert 3.730 percent to 3.730/100, or 0.03730) and write mass of Li in LiAlSi2O6 = 0.03730 × (2.73 × 104 kg) = 1.02 × 103 kg Check As a ballpark estimate, note that the mass percent of Li is roughly 4 percent, so that one twenty-fifth of the mass should 1 be Li; that is, × 2.73 × 104 kg ≈ 1.09 × 103 kg. 25 This quantity is fairly close to the answer. Combust 11.5 g ethanol Collect 22.0 g CO2 and 13.5 g H2O g CO2 mol CO2 mol C gC 6.0 g C = 0.5 mol C g H2O mol H2O mol H gH 1.5 g H = 1.5 mol H g of O = g of sample – (g of C + g of H) 4.0 g O = 0.25 mol O Empirical formula C0.5H1.5O0.25 Divide by smallest subscript (0.25) Empirical formula C2H6O 52 Example 3.11 A sample of a compound contains 30.46 percent nitrogen and 69.54 percent oxygen by mass, as determined by a mass spectrometer. In a separate experiment, the molar mass of the compound is found to be between 90 g and 95 g. Determine the molecular formula and the accurate molar mass of the compound. Example 3.11 Strategy To determine the molecular formula, we first need to determine the empirical formula. Comparing the empirical molar mass to the experimentally determined molar mass will reveal the relationship between the empirical formula and molecular formula. Solution We start by assuming that there are 100 g of the compound. Then each percentage can be converted directly to grams; that is, 30.46 g of N and 69.54 g of O. Example 3.11 Let n represent the number of moles of each element so that Thus, we arrive at the formula N2.174O4.346, which gives the identity and the ratios of atoms present. However, chemical formulas are written with whole numbers. Try to convert to whole numbers by dividing the subscripts by the smaller subscript (2.174). After rounding off, we obtain NO 2 as the empirical formula. Example 3.11 The molecular formula might be the same as the empirical formula or some integral multiple of it (for example, two, three, four, or more times the empirical formula). Comparing the ratio of the molar mass to the molar mass of the empirical formula will show the integral relationship between the empirical and molecular formulas. The molar mass of the empirical formula NO2 is empirical molar mass = 14.01 g + 2(16.00 g) = 46.01 g Example 3.11 Next, we determine the ratio between the molar mass and the empirical molar mass The molar mass is twice the empirical molar mass. This means that there are two NO2 units in each molecule of the compound, and the molecular formula is (NO2)2 or N2O4. The actual molar mass of the compound is two times the empirical molar mass, that is, 2(46.01 g) or 92.02 g, which is between 90 g and 95 g. Example 3.11 Check Note that in determining the molecular formula from the empirical formula, we need only know the approximate molar mass of the compound. The reason is that the true molar mass is an integral multiple (1×, 2×, 3×,...) of the empirical molar mass. Therefore, the ratio (molar mass/empirical molar mass) will always be close to an integer. N2O4 A process in which one or more substances is changed into one or more new substances is a chemical reaction. A chemical equation uses chemical symbols to show what happens during a chemical reaction: reactants products 3 ways of representing the reaction of H2 with O2 to form H2O 59 How to “Read” Chemical Equations 2 Mg + O2 2 MgO 2 atoms Mg + 1 molecule O2 makes 2 formula units MgO 2 moles Mg + 1 mole O2 makes 2 moles MgO 48.6 grams Mg + 32.0 grams O2 makes 80.6 g MgO NOT 2 grams Mg + 1 gram O2 makes 2 g MgO 60 Balancing Chemical Equations 1. Write the correct formula(s) for the reactants on the left side and the correct formula(s) for the product(s) on the right side of the equation. Ethane reacts with oxygen to form carbon dioxide and water C2H6 + O2 CO2 + H2O 2. Change the numbers in front of the formulas (coefficients) to make the number of atoms of each element the same on both sides of the equation. Do not change the subscripts. 2C2H6 NOT C4H12 61 Balancing Chemical Equations 3. Start by balancing those elements that appear in only one reactant and one product. C2H6 + O2 CO2 + H2O start with C or H but not O 2 carbon 1 carbon multiply CO2 by 2 on left on right C2H6 + O2 2CO2 + H2O 6 hydrogen 2 hydrogen multiply H2O by 3 on left on right C2H6 + O2 2CO2 + 3H2O 62 Balancing Chemical Equations 4. Balance those elements that appear in two or more reactants or products. C2H6 + O2 2CO2 + 3H2O multiply O2 by 7 2 2 oxygen 4 oxygen + 3 oxygen = 7 oxygen on left (2x2) (3x1) on right C2H6 + 7 O2 2CO2 + 3H2O remove fraction 2 multiply both sides by 2 2C2H6 + 7O2 4CO2 + 6H2O 63 Balancing Chemical Equations 5. Check to make sure that you have the same number of each type of atom on both sides of the equation. 2C2H6 + 7O2 4CO2 + 6H2O 4 C (2 x 2) 4C 12 H (2 x 6) 12 H (6 x 2) 14 O (7 x 2) 14 O (4 x 2 + 6) Reactants Products 4C 4C 12 H 12 H 14 O 14 O 64 Example 3.12 When aluminum metal is exposed to air, a protective layer of aluminum oxide (Al2O3) forms on its surface. This layer prevents further reaction between aluminum and oxygen, and it is the reason that aluminum beverage cans do not corrode. [In the case of iron, the rust, or iron(III) oxide, that forms is too porous to protect the iron metal An atomic scale image underneath, so rusting continues.] of aluminum oxide. Write a balanced equation for the formation of Al2O3. Example 3.12 Strategy Remember that the formula of an element or compound cannot be changed when balancing a chemical equation. The equation is balanced by placing the appropriate coefficients in front of the formulas. Follow the procedure described on p. 92. Solution The unbalanced equation is In a balanced equation, the number and types of atoms on each side of the equation must be the same. We see that there is one Al atom on the reactants side and there are two Al atoms on the product side. Example 3.12 We can balance the Al atoms by placing a coefficient of 2 in front of Al on the reactants side. There are two O atoms on the reactants side, and three O atoms on the product side of the equation. We can balance the O atoms by placing a coefficient of in front of O2 on the reactants side. This is a balanced equation. However, equations are normally balanced with the smallest set of whole-number coefficients. Example 3.12 Multiplying both sides of the equation by 2 gives whole-number coefficients. or Check For an equation to be balanced, the number and types of atoms on each side of the equation must be the same. The final tally is The equation is balanced. Also, the coefficients are reduced to the simplest set of whole numbers. Amounts of Reactants and Products 1. Write balanced chemical equation 2. Convert quantities of known substances into moles 3. Use coefficients in balanced equation to calculate the number of moles of the sought quantity 69 4. Convert moles of sought quantity into desired units Example 3.13 The food we eat is degraded, or broken down, in our bodies to provide energy for growth and function. A general overall equation for this very complex process represents the degradation of glucose (C6H12O6) to carbon dioxide (CO2) and water (H2O): C6H12O6 If 856 g of C6H12O6 is consumed by a person over a certain period, what is the mass of CO2 produced? Example 3.13 Strategy Looking at the balanced equation, how do we compare the amounts of C6H12O6 and CO2? We can compare them based on the mole ratio from the balanced equation. Starting with grams of C6H12O6, how do we convert to moles of C6H12O6? Once moles of CO2 are determined using the mole ratio from the balanced equation, how do we convert to grams of CO2? Example 3.13 Solution We follow the preceding steps and Figure 3.8. Step 1: The balanced equation is given in the problem. Step 2: To convert grams of C6H12O6 to moles of C6H12O6, we write Step 3: From the mole ratio, we see that 1 mol C6H12O6 ≏ 6 mol CO2. Therefore, the number of moles of CO2 formed is Example 3.13 Step 4: Finally, the number of grams of CO2 formed is given by After some practice, we can combine the conversion steps into one equation: Example 3.13 Check Does the answer seem reasonable? Should the mass of CO2 produced be larger than the mass of C6H12O6 reacted, even though the molar mass of CO2 is considerably less than the molar mass of C6H12O6? What is the mole ratio between CO2 and C6H12O6? Example 3.14 All alkali metals react with water to produce hydrogen gas and the corresponding alkali metal hydroxide. A typical reaction is that between lithium and water: How many grams of Li are needed to Lithium reacting with produce 9.89 g of H2? water to produce hydrogen gas. Example 3.14 Strategy The question asks for number of grams of reactant (Li) to form a specific amount of product (H2). Therefore, we need to reverse the steps shown in Figure 3.8. From the equation we see that 2 mol Li 1 mol H2. Example 3.14 Solution The conversion steps are Combining these steps into one equation, we write Check There are roughly 5 moles of H2 in 9.89 g H2, so we need 10 moles of Li. From the approximate molar mass of Li (7 g), does the answer seem reasonable? Limiting Reagent: Reactant used up first in the reaction. 2NO + O2 2NO2 NO is the limiting reagent O2 is the excess reagent 78 Example 3.15 Urea [(NH2)2CO] is prepared by reacting ammonia with carbon dioxide: In one process, 637.2 g of NH3 are treated with 1142 g of CO2. (a) Which of the two reactants is the limiting reagent? (b) Calculate the mass of (NH2)2CO formed. (c) How much excess reagent (in grams) is left at the end of the reaction? Example 3.15 (a) Strategy The reactant that produces fewer moles of product is the limiting reagent because it limits the amount of product that can be formed. How do we convert from the amount of reactant to amount of product? Perform this calculation for each reactant, then compare the moles of product, (NH2)2CO, formed by the given amounts of NH3 and CO2 to determine which reactant is the limiting reagent. Example 3.15 Solution We carry out two separate calculations. First, starting with 637.2 g of NH3, we calculate the number of moles of (NH2)2CO that could be produced if all the NH3 reacted according to the following conversions: Combining these conversions in one step, we write Example 3.15 Second, for 1142 g of CO2, the conversions are The number of moles of (NH2)2CO that could be produced if all the CO2 reacted is It follows, therefore, that NH3 must be the limiting reagent because it produces a smaller amount of (NH2)2CO. Example 3.15 (b) Strategy We determined the moles of (NH2)2CO produced in part (a), using NH3 as the limiting reagent. How do we convert from moles to grams? Solution The molar mass of (NH2)2CO is 60.06 g. We use this as a conversion factor to convert from moles of (NH2)2CO to grams of (NH2)2CO: Check Does your answer seem reasonable? 18.71 moles of product are formed. What is the mass of 1 mole of (NH2)2CO? Example 3.15 (c) Strategy Working backward, we can determine the amount of CO2 that reacted to produce 18.71 moles of (NH2)2CO. The amount of CO2 left over is the difference between the initial amount and the amount reacted. Solution Starting with 18.71 moles of (NH2)2CO, we can determine the mass of CO2 that reacted using the mole ratio from the balanced equation and the molar mass of CO2. The conversion steps are Example 3.15 Combining these conversions in one step, we write The amount of CO2 remaining (in excess) is the difference between the initial amount (1142 g) and the amount reacted (823.4 g): mass of CO2 remaining = 1142 g − 823.4 g = 319 g Reaction Yield Theoretical Yield is the amount of product that would result if all the limiting reagent reacted. Actual Yield is the amount of product actually obtained from a reaction. Actual Yield % Yield = x 100% Theoretical Yield 86 Example 3.16 Titanium is a strong, lightweight, corrosion-resistant metal that is used in rockets, aircraft, jet engines, and bicycle frames. It is prepared by the reaction of titanium(IV) chloride with molten magnesium between 950°C and 1150°C: In a certain industrial operation 3.54 × 107 g of TiCl4 are reacted with 1.13 × 107 g of Mg. (a) Calculate the theoretical yield of Ti in grams. (b) Calculate the percent yield if 7.91 × 106 g of Ti are actually obtained. Example 3.16 (a) Strategy Because there are two reactants, this is likely to be a limiting reagent problem. The reactant that produces fewer moles of product is the limiting reagent. How do we convert from amount of reactant to amount of product? Perform this calculation for each reactant, then compare the moles of product, Ti, formed. Example 3.16 Solution Carry out two separate calculations to see which of the two reactants is the limiting reagent. First, starting with 3.54 × 107 g of TiCl4, calculate the number of moles of Ti that could be produced if all the TiCl4 reacted. The conversions are so that Example 3.16 Next, we calculate the number of moles of Ti formed from 1.13 × 107 g of Mg. The conversion steps are And we write Therefore, TiCl4 is the limiting reagent because it produces a smaller amount of Ti. Example 3.16 The mass of Ti formed is (b) Strategy The mass of Ti determined in part (a) is the theoretical yield. The amount given in part (b) is the actual yield of the reaction. Example 3.16 Solution The percent yield is given by Check Should the percent yield be less than 100 percent?

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