
{"id":195,"date":"2017-09-08T02:29:02","date_gmt":"2017-09-08T02:29:02","guid":{"rendered":"http:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/chapter\/reaction-yields\/"},"modified":"2017-09-08T02:29:02","modified_gmt":"2017-09-08T02:29:02","slug":"reaction-yields","status":"publish","type":"chapter","link":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/chapter\/reaction-yields\/","title":{"raw":"Reaction Yields","rendered":"Reaction Yields"},"content":{"raw":"[latexpage]<div class=\"textbox learning-objectives\"><h3 itemprop=\"educationalUse\">Learning Objectives<\/h3>By the end of this section, you will be able to:\n<ul><li>Explain the concepts of theoretical yield and limiting reactants\/reagents.<\/li><li>Derive the theoretical yield for a reaction under specified conditions.<\/li><li>Calculate the percent yield for a reaction.<\/li><\/ul><\/div><p id=\"fs-idp24998416\">The relative amounts of reactants and products represented in a balanced chemical equation are often referred to as <em data-effect=\"italics\">stoichiometric amounts<\/em>. All the exercises of the preceding module involved stoichiometric amounts of reactants. For example, when calculating the amount of product generated from a given amount of reactant, it was assumed that any other reactants required were available in stoichiometric amounts (or greater). In this module, more realistic situations are considered, in which reactants are not present in stoichiometric amounts.<\/p><div class=\"bc-section section\" data-depth=\"1\" id=\"fs-idp5731792\"><h1 data-type=\"title\">Limiting Reactant<\/h1><p id=\"fs-idp103911360\">Consider another food analogy, making grilled cheese sandwiches (<a href=\"#CNX_Chem_04_04_sandwich\" class=\"autogenerated-content\">[link]<\/a>):<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp59817360\">\\(\\text{1 slice of cheese}\\phantom{\\rule{0.2em}{0ex}}+\\phantom{\\rule{0.2em}{0ex}}\\text{2 slices of bread}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{1 sandwich}\\)<\/div><p id=\"fs-idp39531056\">Stoichiometric amounts of sandwich ingredients for this recipe are bread and cheese slices in a 2:1 ratio. Provided with 28 slices of bread and 11 slices of cheese, one may prepare 11 sandwiches per the provided recipe, using all the provided cheese and having six slices of bread left over. In this scenario, the number of sandwiches prepared has been <em data-effect=\"italics\">limited<\/em> by the number of cheese slices, and the bread slices have been provided in <em data-effect=\"italics\">excess<\/em>.<\/p><div class=\"bc-figure figure\" id=\"CNX_Chem_04_04_sandwich\"><div class=\"bc-figcaption figcaption\">Sandwich making can illustrate the concepts of limiting and excess reactants.<\/div><span data-type=\"media\" id=\"fs-idm59912944\" data-alt=\"This figure has three rows showing the ingredients needed to make a sandwich. The first row reads, &#x201c;1 sandwich = 2 slices of bread + 1 slice of cheese.&#x201d; Two slices of bread and one slice of cheese are shown. The second row reads, &#x201c;Provided with: 28 slices of bread + 11 slices of cheese.&#x201d; There are 28 slices of bread and 11 slices of cheese shown. The third row reads, &#x201c;We can make: 11 sandwiches + 6 slices of bread left over.&#x201d; 11 sandwiches are shown with six extra slices of bread.\"><img src=\"http:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_sandwich.jpg\" data-media-type=\"image\/jpeg\" alt=\"This figure has three rows showing the ingredients needed to make a sandwich. The first row reads, &#x201c;1 sandwich = 2 slices of bread + 1 slice of cheese.&#x201d; Two slices of bread and one slice of cheese are shown. The second row reads, &#x201c;Provided with: 28 slices of bread + 11 slices of cheese.&#x201d; There are 28 slices of bread and 11 slices of cheese shown. The third row reads, &#x201c;We can make: 11 sandwiches + 6 slices of bread left over.&#x201d; 11 sandwiches are shown with six extra slices of bread.\" \/><\/span><\/div><p id=\"fs-idm48112848\">Consider this concept now with regard to a chemical process, the reaction of hydrogen with chlorine to yield hydrogen chloride:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp62209424\">\\({\\text{H}}_{2}\\left(s\\right)+{\\text{Cl}}_{2}\\left(g\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{2HCl}\\left(g\\right)\\)<\/div><p id=\"fs-idp157494624\">The balanced equation shows the hydrogen and chlorine react in a 1:1 stoichiometric ratio. If these reactants are provided in any other amounts, one of the reactants will nearly always be entirely consumed, thus limiting the amount of product that may be generated. This substance is the <span data-type=\"term\">limiting reactant<\/span>, and the other substance is the <span data-type=\"term\">excess reactant<\/span>. Identifying the limiting and excess reactants for a given situation requires computing the molar amounts of each reactant provided and comparing them to the stoichiometric amounts represented in the balanced chemical equation. For example, imagine combining 3 moles of H<sub>2<\/sub> and 2 moles of Cl<sub>2<\/sub>. This represents a 3:2 (or 1.5:1) ratio of hydrogen to chlorine present for reaction, which is greater than the stoichiometric ratio of 1:1. Hydrogen, therefore, is present in excess, and chlorine is the limiting reactant. Reaction of all the provided chlorine (2 mol) will consume 2 mol of the 3 mol of hydrogen provided, leaving 1 mol of hydrogen unreacted.<\/p><p id=\"fs-idp22005824\">An alternative approach to identifying the limiting reactant involves comparing the amount of product expected for the complete reaction of each reactant. Each reactant amount is used to separately calculate the amount of product that would be formed per the reaction\u2019s stoichiometry. The reactant yielding the lesser amount of product is the limiting reactant. For the example in the previous paragraph, complete reaction of the hydrogen would yield<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp67209632\">\\(\\text{mol HCl produced}=\\text{3 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{H}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{2 mol HCl}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{H}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\text{6 mol HCl}\\)<\/div><p id=\"fs-idm20022400\">Complete reaction of the provided chlorine would produce<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp10471024\">\\(\\text{mol HCl produced}=\\text{2 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Cl}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{2 mol HCl}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Cl}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\text{4 mol HCl}\\)<\/div><p id=\"fs-idm39942944\">The chlorine will be completely consumed once 4 moles of HCl have been produced. Since enough hydrogen was provided to yield 6 moles of HCl, there will be unreacted hydrogen remaining once this reaction is complete. Chlorine, therefore, is the limiting reactant and hydrogen is the excess reactant (<a href=\"#CNX_Chem_04_04_limiting\" class=\"autogenerated-content\">[link]<\/a>).<\/p><div class=\"bc-figure figure\" id=\"CNX_Chem_04_04_limiting\"><div class=\"bc-figcaption figcaption\">When H<sub>2<\/sub> and Cl<sub>2<\/sub> are combined in nonstoichiometric amounts, one of these reactants will limit the amount of HCl that can be produced. This illustration shows a reaction in which hydrogen is present in excess and chlorine is the limiting reactant.<\/div><span data-type=\"media\" id=\"fs-idp182564432\" data-alt=\"The figure shows a space-filling molecular models reacting. There is a reaction arrow pointing to the right in the middle. To the left of the reaction arrow there are three molecules each consisting of two green spheres bonded together. There are also five molecules each consisting of two smaller, white spheres bonded together. Above these molecules is the label, &#x201c;Before reaction,&#x201d; and below these molecules is the label, &#x201c;6 H subscript 2 and 4 C l subscript 2.&#x201d; To the right of the reaction arrow, there are eight molecules each consisting of one green sphere bonded to a smaller white sphere. There are also two molecules each consisting of two white spheres bonded together. Above these molecules is the label, &#x201c;After reaction,&#x201d; and below these molecules is the label, &#x201c;8 H C l and 2 H subscript 2.&#x201d;\"><img src=\"http:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_limiting.jpg\" data-media-type=\"image\/jpeg\" alt=\"The figure shows a space-filling molecular models reacting. There is a reaction arrow pointing to the right in the middle. To the left of the reaction arrow there are three molecules each consisting of two green spheres bonded together. There are also five molecules each consisting of two smaller, white spheres bonded together. Above these molecules is the label, &#x201c;Before reaction,&#x201d; and below these molecules is the label, &#x201c;6 H subscript 2 and 4 C l subscript 2.&#x201d; To the right of the reaction arrow, there are eight molecules each consisting of one green sphere bonded to a smaller white sphere. There are also two molecules each consisting of two white spheres bonded together. Above these molecules is the label, &#x201c;After reaction,&#x201d; and below these molecules is the label, &#x201c;8 H C l and 2 H subscript 2.&#x201d;\" \/><\/span><\/div><div data-type=\"note\" id=\"fs-idp162031984\" class=\"note chemistry link-to-learning\"><span data-type=\"media\" id=\"fs-idp155120000\" data-alt=\"\"><img src=\"http:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Interactive_200DPI.png\" data-media-type=\"image\/png\" alt=\"\" \/><\/span><p id=\"fs-idm52028528\">View this interactive <a href=\"http:\/\/openstaxcollege.org\/l\/16reactantprod\">simulation<\/a> illustrating the concepts of limiting and excess reactants.<\/p><\/div><div data-type=\"example\" class=\"textbox examples\" id=\"fs-idp70587344\"><p id=\"fs-idm3583984\"><span data-type=\"title\">Identifying the Limiting Reactant<\/span>\nSilicon nitride is a very hard, high-temperature-resistant ceramic used as a component of turbine blades in jet engines. It is prepared according to the following equation:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idm22587536\">\\(\\text{3Si}\\left(s\\right)+2{\\text{N}}_{2}\\left(g\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}{\\text{N}}_{4}\\left(s\\right)\\)<\/div><p id=\"fs-idp52711328\">Which is the limiting reactant when 2.00 g of Si and 1.50 g of N<sub>2<\/sub> react?<\/p><p id=\"fs-idm18749312\"><span data-type=\"title\">Solution<\/span>\nCompute the provided molar amounts of reactants, and then compare these amounts to the balanced equation to identify the limiting reactant.<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp16604400\">\\(\\text{mol Si}=2.00\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g Si}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1 mol Si}}{28.09\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g Si}}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0712 mol Si}\\)<\/div><div data-type=\"equation\" class=\"equation\" id=\"fs-idp42210944\">\\(\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}=1.50\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}{28.02\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0535 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}\\)<\/div><p id=\"fs-idp47057824\">The provided Si:N<sub>2<\/sub> molar ratio is:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp107313360\">\\(\\frac{\\text{0.0712 mol Si}}{\\text{0.0535 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1.33 mol Si}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\)<\/div><p id=\"fs-idm100978944\">The stoichiometric Si:N<sub>2<\/sub> ratio is:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idm60202256\">\\(\\frac{\\text{3 mol Si}}{\\text{2 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1.5 mol Si}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\)<\/div><p id=\"fs-idm1915936\">Comparing these ratios shows that Si is provided in a less-than-stoichiometric amount, and so is the limiting reactant.<\/p><p id=\"fs-idm9495168\">Alternatively, compute the amount of product expected for complete reaction of each of the provided reactants. The 0.0712 moles of silicon would yield<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp161973712\">\\(\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\phantom{\\rule{0.2em}{0ex}}\\text{produced}=\\text{0.0712 mol Si}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{1\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}}{\\text{3 mol Si}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0237 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\)<\/div><p id=\"fs-idm3691696\">while the 0.0535 moles of nitrogen would produce<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idm62043536\">\\(\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\phantom{\\rule{0.2em}{0ex}}\\text{produced}=\\text{0.0535 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}}{\\text{2 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0268 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\)<\/div><p id=\"fs-idm55343248\">Since silicon yields the lesser amount of product, it is the limiting reactant.<\/p><p id=\"fs-idp70544208\"><span data-type=\"title\">Check Your Learning<\/span>\nWhich is the limiting reactant when 5.00 g of H<sub>2<\/sub> and 10.0 g of O<sub>2<\/sub> react and form water?<\/p><div data-type=\"note\" class=\"note\" id=\"fs-idm19095728\"><div data-type=\"title\" class=\"title\">Answer:<\/div><p id=\"fs-idp69025056\">O<sub>2<\/sub><\/p><\/div><\/div><\/div><div class=\"bc-section section\" data-depth=\"1\" id=\"fs-idm20935792\"><h1 data-type=\"title\">Percent Yield<\/h1><p id=\"fs-idm22072192\">The amount of product that <em data-effect=\"italics\">may be<\/em> produced by a reaction under specified conditions, as calculated per the stoichiometry of an appropriate balanced chemical equation, is called the <span data-type=\"term\">theoretical yield<\/span> of the reaction. In practice, the amount of product obtained is called the <span data-type=\"term\">actual yield<\/span>, and it is often less than the theoretical yield for a number of reasons. Some reactions are inherently inefficient, being accompanied by <em data-effect=\"italics\">side reactions<\/em> that generate other products. Others are, by nature, incomplete (consider the partial reactions of weak acids and bases discussed earlier in this chapter). Some products are difficult to collect without some loss, and so less than perfect recovery will reduce the actual yield. The extent to which a reaction\u2019s theoretical yield is achieved is commonly expressed as its <span data-type=\"term\">percent yield<\/span>:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp47653952\">\\(\\text{percent yield}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{actual yield}}{\\text{theoretical yield}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100%\\)<\/div><p id=\"fs-idm52282816\">Actual and theoretical yields may be expressed as masses or molar amounts (or any other appropriate property; e.g., volume, if the product is a gas). As long as both yields are expressed using the same units, these units will cancel when percent yield is calculated.<\/p><div data-type=\"example\" class=\"textbox examples\" id=\"fs-idm49018784\"><p id=\"fs-idm68646768\"><span data-type=\"title\">Calculation of Percent Yield<\/span>\nUpon reaction of 1.274 g of copper sulfate with excess zinc metal, 0.392 g copper metal was obtained according to the equation:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp101757552\">\\({\\text{CuSO}}_{4}\\left(aq\\right)+\\text{Zn}\\left(s\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{Cu}\\left(s\\right)+{\\text{ZnSO}}_{4}\\left(aq\\right)\\)<\/div><p id=\"fs-idp104261712\">What is the percent yield?<\/p><p id=\"fs-idp98890704\"><span data-type=\"title\">Solution<\/span>\nThe provided information identifies copper sulfate as the limiting reactant, and so the theoretical yield is found by the approach illustrated in the previous module, as shown here:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp104521856\">\\(1.274\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}}{159.62\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol Cu}}}{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{63.55\\phantom{\\rule{0.2em}{0ex}}\\text{g Cu}}{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol Cu}}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.5072 g Cu}\\)<\/div><p id=\"fs-idp47540336\">Using this theoretical yield and the provided value for actual yield, the percent yield is calculated to be<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp217309712\">\\(\\text{percent yield}=\\left(\\frac{\\text{actual yield}}{\\text{theoretical yield}}\\right)\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100\\)<\/div><div data-type=\"equation\" class=\"equation\" id=\"fs-idp182503696\">\\(\\begin{array}{c}\\\\ \\text{percent yield}=\\left(\\frac{\\text{0.392 g Cu}}{\\text{0.5072 g Cu}}\\right)\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100\\\\ =77.3%\\end{array}\\)<\/div><p id=\"fs-idp38988928\"><span data-type=\"title\">Check Your Learning<\/span>What is the percent yield of a reaction that produces 12.5 g of the gas Freon CF<sub>2<\/sub>Cl<sub>2<\/sub> from 32.9 g of CCl<sub>4<\/sub> and excess HF?<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp61435552\">\\({\\text{CCl}}_{4}+2\\text{HF}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{CF}}_{2}{\\text{Cl}}_{2}+2\\text{HCl}\\)<\/div><div data-type=\"note\" class=\"note\" id=\"fs-idp47749920\"><div data-type=\"title\" class=\"title\">Answer:<\/div><p id=\"fs-idp47655136\">48.3%<\/p><\/div><\/div><div data-type=\"note\" id=\"fs-idm21958480\" class=\"note chemistry sciences-interconnect\"><div data-type=\"title\" class=\"title\">Green Chemistry and Atom Economy<\/div><p id=\"fs-idm49080288\">The purposeful design of chemical products and processes that minimize the use of environmentally hazardous substances and the generation of waste is known as <em data-effect=\"italics\">green chemistry<\/em>. Green chemistry is a philosophical approach that is being applied to many areas of science and technology, and its practice is summarized by guidelines known as the \u201cTwelve Principles of Green Chemistry\u201d (see details at this <a href=\"http:\/\/openstaxcollege.org\/l\/16greenchem\">website<\/a>). One of the 12 principles is aimed specifically at maximizing the efficiency of processes for synthesizing chemical products. The <em data-effect=\"italics\">atom economy<\/em> of a process is a measure of this efficiency, defined as the percentage by mass of the final product of a synthesis relative to the masses of <em data-effect=\"italics\">all<\/em> the reactants used:<\/p><div data-type=\"equation\" class=\"equation\" id=\"fs-idp116950848\">\\(\\text{atom economy}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{mass of product}}{\\text{mass of reactants}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100%\\)<\/div><p id=\"fs-idp59920960\">Though the definition of atom economy at first glance appears very similar to that for percent yield, be aware that this property represents a difference in the <em data-effect=\"italics\">theoretical<\/em> efficiencies of <em data-effect=\"italics\">different<\/em> chemical processes. The percent yield of a given chemical process, on the other hand, evaluates the efficiency of a process by comparing the yield of product actually obtained to the maximum yield predicted by stoichiometry.<\/p><p id=\"fs-idp167996000\">The synthesis of the common nonprescription pain medication, ibuprofen, nicely illustrates the success of a green chemistry approach (<a href=\"#CNX_Chem_04_04_GreenChem\" class=\"autogenerated-content\">[link]<\/a>). First marketed in the early 1960s, ibuprofen was produced using a six-step synthesis that required 514 g of reactants to generate each mole (206 g) of ibuprofen, an atom economy of 40%. In the 1990s, an alternative process was developed by the BHC Company (now BASF Corporation) that requires only three steps and has an atom economy of ~80%, nearly twice that of the original process. The BHC process generates significantly less chemical waste; uses less-hazardous and recyclable materials; and provides significant cost-savings to the manufacturer (and, subsequently, the consumer). In recognition of the positive environmental impact of the BHC process, the company received the Environmental Protection Agency\u2019s Greener Synthetic Pathways Award in 1997.<\/p><div class=\"bc-figure figure\" id=\"CNX_Chem_04_04_GreenChem\"><div class=\"bc-figcaption figcaption\">(a) Ibuprofen is a popular nonprescription pain medication commonly sold as 200 mg tablets. (b) The BHC process for synthesizing ibuprofen requires only three steps and exhibits an impressive atom economy. (credit a: modification of work by Derrick Coetzee)<\/div><span data-type=\"media\" id=\"fs-idp994368\" data-alt=\"This figure is labeled, &#x201c;a,&#x201d; and, &#x201c;b.&#x201d; Part a shows an open bottle of ibuprofen and a small pile of ibuprofen tablets beside it. Part b shows a reaction along with line structures. The first line structure looks like a diagonal line pointing down and to the right, then up and to the right and then down and to the right. At this point it connects to a hexagon with alternating double bonds. At the first trough there is a line that points straight down. From this structure, there is an arrow pointing downward. The arrow is labeled, &#x201c;H F,&#x201d; on the left and &#x201c;( C H subscript 3 C O ) subscript 2 O,&#x201d; on the right. The next line structure looks exactly like the first line structure, but it has a line angled down and to the right from the lower right point of the hexagon. This line is connected to another line which points straight down. Where these two lines meet, there is a double bond to an O atom. There is another arrow pointing downward, and it is labeled, &#x201c;H subscript 2, Raney N i.&#x201d; The next structure looks very similar to the second, previous structure, except in place of the double bonded O, there is a singly bonded O H group. There is a final reaction arrow pointing downward, and it is labeled, &#x201c;C O, [ P d ].&#x201d; The final structure is similar to the third, previous structure except in place of the O H group, there is another line that points down and to the right to an O H group. At these two lines, there is a double bonded O.\"><img src=\"http:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_GreenChem.jpg\" data-media-type=\"image\/jpeg\" alt=\"This figure is labeled, &#x201c;a,&#x201d; and, &#x201c;b.&#x201d; Part a shows an open bottle of ibuprofen and a small pile of ibuprofen tablets beside it. Part b shows a reaction along with line structures. The first line structure looks like a diagonal line pointing down and to the right, then up and to the right and then down and to the right. At this point it connects to a hexagon with alternating double bonds. At the first trough there is a line that points straight down. From this structure, there is an arrow pointing downward. The arrow is labeled, &#x201c;H F,&#x201d; on the left and &#x201c;( C H subscript 3 C O ) subscript 2 O,&#x201d; on the right. The next line structure looks exactly like the first line structure, but it has a line angled down and to the right from the lower right point of the hexagon. This line is connected to another line which points straight down. Where these two lines meet, there is a double bond to an O atom. There is another arrow pointing downward, and it is labeled, &#x201c;H subscript 2, Raney N i.&#x201d; The next structure looks very similar to the second, previous structure, except in place of the double bonded O, there is a singly bonded O H group. There is a final reaction arrow pointing downward, and it is labeled, &#x201c;C O, [ P d ].&#x201d; The final structure is similar to the third, previous structure except in place of the O H group, there is another line that points down and to the right to an O H group. At these two lines, there is a double bonded O.\" \/><\/span><\/div><\/div><\/div><div class=\"summary\" data-depth=\"1\" id=\"fs-idm64875168\"><h1 data-type=\"title\">Key Concepts and Summary<\/h1><p id=\"fs-idm5314032\">When reactions are carried out using less-than-stoichiometric quantities of reactants, the amount of product generated will be determined by the limiting reactant. The amount of product generated by a chemical reaction is its actual yield. This yield is often less than the amount of product predicted by the stoichiometry of the balanced chemical equation representing the reaction (its theoretical yield). The extent to which a reaction generates the theoretical amount of product is expressed as its percent yield.<\/p><\/div><div class=\"key-equations\" data-depth=\"1\" id=\"fs-idp36036608\"><h1 data-type=\"title\">Key Equations<\/h1><ul id=\"fs-idp46607520\" data-bullet-style=\"bullet\"><li>\\(\\text{percent yield}=\\left(\\frac{\\text{actual yield}}{\\text{theoretical yield}}\\right)\\phantom{\\rule{0.4em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100\\)<\/li><\/ul><\/div><div class=\"exercises\" data-depth=\"1\" id=\"fs-idm49138160\"><h1 data-type=\"title\">Chemistry End of Chapter Exercises<\/h1><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm72007808\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp58837040\"><p id=\"fs-idp158025632\">The following quantities are placed in a container: 1.5 \\(\u00d7\\) 10<sup>24<\/sup> atoms of hydrogen, 1.0 mol of sulfur, and 88.0 g of diatomic oxygen.<\/p><p id=\"fs-idp10708080\">(a) What is the total mass in grams for the collection of all three elements?<\/p><p id=\"fs-idm64569408\">(b) What is the total number of moles of atoms for the three elements?<\/p><p id=\"fs-idp46468992\">(c) If the mixture of the three elements formed a compound with molecules that contain two hydrogen atoms, one sulfur atom, and four oxygen atoms, which substance is consumed first?<\/p><p id=\"fs-idm56547920\">(d) How many atoms of each remaining element would remain unreacted in the change described in (c)?<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm48529264\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp11141376\"><p id=\"fs-idp101303920\">What is the limiting reactant in a reaction that produces sodium chloride from 8 g of sodium and 8 g of diatomic chlorine?<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp69899344\"><p id=\"fs-idp22297728\">The limiting reactant is Cl2.<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm47361200\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp26308256\"><p id=\"fs-idp62729328\">Which of the postulates of Dalton's atomic theory explains why we can calculate a theoretical yield for a chemical reaction?<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm38653920\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp98512336\"><p id=\"fs-idp10358416\">A student isolated 25 g of a compound following a procedure that would theoretically yield 81 g. What was his percent yield?<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idm45772288\"><p id=\"fs-idp46323152\">\\(\\text{Percent yield}=\\text{31%}\\)<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp61299760\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp221706336\"><p id=\"fs-idp6755168\">A sample of 0.53 g of carbon dioxide was obtained by heating 1.31 g of calcium carbonate. What is the percent yield for this reaction?<\/p><p id=\"fs-idp4609920\">\\({\\text{CaCO}}_{3}\\left(s\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{CaO}\\left(s\\right)+{\\text{CO}}_{2}\\left(s\\right)\\)<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm57693344\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idm6761360\"><p id=\"fs-idp5068384\">Freon-12, CCl<sub>2<\/sub>F<sub>2<\/sub>, is prepared from CCl<sub>4<\/sub> by reaction with HF. The other product of this reaction is HCl. Outline the steps needed to determine the percent yield of a reaction that produces 12.5 g of CCl<sub>2<\/sub>F<sub>2<\/sub> from 32.9 g of CCl<sub>4<\/sub>. Freon-12 has been banned and is no longer used as a refrigerant because it catalyzes the decomposition of ozone and has a very long lifetime in the atmosphere. Determine the percent yield.<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp215202608\"><p id=\"fs-idp59773152\">\\(\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{4}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{4}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{2}{\\text{F}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{2}{\\text{F}}_{2},\\)\\(\\text{percent yield}=\\text{48.3%}\\)<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp99327968\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idm34002944\"><p id=\"fs-idp27686272\">Citric acid, C<sub>6<\/sub>H<sub>8<\/sub>O<sub>7<\/sub>, a component of jams, jellies, and fruity soft drinks, is prepared industrially via fermentation of sucrose by the mold <em data-effect=\"italics\">Aspergillus niger<\/em>. The equation representing this reaction is<\/p><div data-type=\"newline\"><br \/><\/div>\n\\({\\text{C}}_{12}{\\text{H}}_{22}{\\text{O}}_{11}+{\\text{H}}_{2}\\text{O}+3{\\text{O}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}2{\\text{C}}_{6}{\\text{H}}_{8}{\\text{O}}_{7}+4{\\text{H}}_{2}\\text{O}\\)<p id=\"fs-idm8793984\">What mass of citric acid is produced from exactly 1 metric ton (1.000 \\(\u00d7\\) 10<sup>3<\/sup> kg) of sucrose if the yield is 92.30%?<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp34342864\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idm26296528\"><p id=\"fs-idm48555120\">Toluene, C<sub>6<\/sub>H<sub>5<\/sub>CH<sub>3<\/sub>, is oxidized by air under carefully controlled conditions to benzoic acid, C<sub>6<\/sub>H<sub>5<\/sub>CO<sub>2<\/sub>H, which is used to prepare the food preservative sodium benzoate, C<sub>6<\/sub>H<sub>5<\/sub>CO<sub>2<\/sub>Na. What is the percent yield of a reaction that converts 1.000 kg of toluene to 1.21 kg of benzoic acid?<\/p><p id=\"fs-idp58383920\">\\(2{\\text{C}}_{6}{\\text{H}}_{5}{\\text{CH}}_{3}+3{\\text{O}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}2{\\text{C}}_{6}{\\text{H}}_{5}{\\text{CO}}_{2}\\text{H}+2{\\text{H}}_{2}\\text{O}\\)<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp161963872\"><p id=\"fs-idm18984464\">\\(\\text{percent yield}=\\text{91.3%}\\)<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm7557120\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp67978352\"><p id=\"fs-idp94004800\">In a laboratory experiment, the reaction of 3.0 mol of H<sub>2<\/sub> with 2.0 mol of I<sub>2<\/sub> produced 1.0 mol of HI. Determine the theoretical yield in grams and the percent yield for this reaction.<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm46525040\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp107511744\"><p id=\"fs-idm3264240\">Outline the steps needed to solve the following problem, then do the calculations. Ether, (C<sub>2<\/sub>H<sub>5<\/sub>)<sub>2<\/sub>O, which was originally used as an anesthetic but has been replaced by safer and more effective medications, is prepared by the reaction of ethanol with sulfuric acid.<\/p><p id=\"fs-idm120301824\">2C<sub>2<\/sub>H<sub>5<\/sub>OH + H<sub>2<\/sub>SO<sub>4<\/sub> \u27f6 (C<sub>2<\/sub>H<sub>5<\/sub>)<sub>2<\/sub>O + H<sub>2<\/sub>SO<sub>4<\/sub>\u00b7H<sub>2<\/sub>O<\/p><p id=\"fs-idp39307056\">What is the percent yield of ether if 1.17 L (d = 0.7134 g\/mL) is isolated from the reaction of 1.500 L of C<sub>2<\/sub>H<sub>5<\/sub>OH<\/p><div data-type=\"newline\"><br \/><\/div>(d = 0.7894 g\/mL)?<\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp98805200\"><p id=\"fs-idm48114608\">Convert mass of ethanol to moles of ethanol; relate the moles of ethanol to the moles of ether produced using the stoichiometry of the balanced equation. Convert moles of ether to grams; divide the actual grams of ether (determined through the density) by the theoretical mass to determine the percent yield; 87.6%<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm43326768\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp52880736\"><p id=\"fs-idp68715040\">Outline the steps needed to determine the limiting reactant when 30.0 g of propane, C<sub>3<\/sub>H<sub>8<\/sub>, is burned with 75.0 g of oxygen.<\/p><p id=\"fs-idp201350320\">Determine the limiting reactant.<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm49726752\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp65728368\"><p id=\"fs-idp101414208\">Outline the steps needed to determine the limiting reactant when 0.50 mol of Cr and 0.75 mol of H<sub>3<\/sub>PO<sub>4<\/sub> react according to the following chemical equation.<\/p><div data-type=\"newline\"><br \/><\/div>\n\\(2\\text{Cr}+2{\\text{H}}_{3}{\\text{PO}}_{4}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}2{\\text{CrPO}}_{4}+3{\\text{H}}_{2}\\)<p id=\"fs-idm522144\">Determine the limiting reactant.<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp31491504\"><p id=\"fs-idm38791728\">The conversion needed is \\(\\text{mol Cr}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{H}}_{3}{\\text{PO}}_{4}.\\) Then compare the amount of Cr to the amount of acid present. Cr is the limiting reactant.<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm21873728\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp26219728\"><p id=\"fs-idp47839312\">What is the limiting reactant when 1.50 g of lithium and 1.50 g of nitrogen combine to form lithium nitride, a component of advanced batteries, according to the following unbalanced equation?<\/p><div data-type=\"newline\"><br \/><\/div>\n\\(\\text{Li}+{\\text{N}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{Li}}_{3}\\text{N}\\)<\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp70668864\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idm47524112\"><p id=\"fs-idp62392768\">Uranium can be isolated from its ores by dissolving it as UO<sub>2<\/sub>(NO<sub>3<\/sub>)<sub>2<\/sub>, then separating it as solid UO<sub>2<\/sub>(C<sub>2<\/sub>O<sub>4<\/sub>)\u00b73H<sub>2<\/sub>O. Addition of 0.4031 g of sodium oxalate, Na<sub>2<\/sub>C<sub>2<\/sub>O<sub>4<\/sub>, to a solution containing 1.481 g of uranyl nitrate, UO<sub>2<\/sub>(NO<sub>3<\/sub>)<sub>2<\/sub>, yields 1.073 g of solid UO<sub>2<\/sub>(C<sub>2<\/sub>O<sub>4<\/sub>)\u00b73H<sub>2<\/sub>O.<\/p><p id=\"fs-idm72766640\">Na<sub>2<\/sub>C<sub>2<\/sub>O<sub>4<\/sub> + UO<sub>2<\/sub>(NO<sub>3<\/sub>)<sub>2<\/sub> + 3H<sub>2<\/sub>O \u27f6 UO<sub>2<\/sub>(C<sub>2<\/sub>O<sub>4<\/sub>)\u00b73H<sub>2<\/sub>O + 2NaNO<sub>3<\/sub><\/p><p id=\"fs-idp232896464\">Determine the limiting reactant and the percent yield of this reaction.<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp91587744\"><p id=\"fs-idp74993536\">Na<sub>2<\/sub>C<sub>2<\/sub>O<sub>4<\/sub> is the limiting reactant. percent yield = 86.6%<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm574992\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idm64892416\"><p id=\"fs-idm51429104\">How many molecules of C<sub>2<\/sub>H<sub>4<\/sub>Cl<sub>2<\/sub> can be prepared from 15 C<sub>2<\/sub>H<sub>4<\/sub> molecules and 8 Cl<sub>2<\/sub> molecules?<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm71853216\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp98807392\"><p id=\"fs-idp16595856\">How many molecules of the sweetener saccharin can be prepared from 30 C atoms, 25 H atoms, 12 O atoms, 8 S atoms, and 14 N atoms?<\/p><span data-type=\"media\" id=\"fs-idp36082896\" data-alt=\"A structural formula is shown. A hexagonal ring of 6 C atoms with alternating double bonds has single H atoms bonded to four consecutive C atoms on the left side of the ring. The two C atoms on the right side of the ring, which are joined by a double bond, are also included in a 5 atom ring to their right. The C atom of this pair that is nearest the top of the structure is singly bonded to a C atom at the top of the 5 atom ring which has an O atom double bonded above. An N atom is singly bonded to the lower right of this same C atom. The N atom has an H atom bonded to its right and to its lower left, it is bonded to an S atom. The S atom is connected to the second C atom that is shared in the two rings. The S atom is also double bonded to an O atom to its lower right and is double bonded to a second O atom directly below it.\"><img src=\"http:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_saccharin_img.jpg\" data-media-type=\"image\/jpeg\" alt=\"A structural formula is shown. A hexagonal ring of 6 C atoms with alternating double bonds has single H atoms bonded to four consecutive C atoms on the left side of the ring. The two C atoms on the right side of the ring, which are joined by a double bond, are also included in a 5 atom ring to their right. The C atom of this pair that is nearest the top of the structure is singly bonded to a C atom at the top of the 5 atom ring which has an O atom double bonded above. An N atom is singly bonded to the lower right of this same C atom. The N atom has an H atom bonded to its right and to its lower left, it is bonded to an S atom. The S atom is connected to the second C atom that is shared in the two rings. The S atom is also double bonded to an O atom to its lower right and is double bonded to a second O atom directly below it.\" \/><\/span><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp30000464\"><p id=\"fs-idp81228400\">Only four molecules can be made.<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp41861648\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp130711232\"><p id=\"fs-idm1521280\">The phosphorus pentoxide used to produce phosphoric acid for cola soft drinks is prepared by burning phosphorus in oxygen.<\/p><p id=\"fs-idm55530368\">(a) What is the limiting reactant when 0.200 mol of P<sub>4<\/sub> and 0.200 mol of O<sub>2<\/sub> react according to \\({\\text{P}}_{4}+5{\\text{O}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{P}}_{4}{\\text{O}}_{10}\\)<\/p><p id=\"fs-idp39236672\">(b) Calculate the percent yield if 10.0 g of P<sub>4<\/sub>O<sub>10<\/sub> is isolated from the reaction.<\/p><\/div><\/div><div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm19471568\"><div data-type=\"problem\" class=\"problem\" id=\"fs-idp215625584\"><p id=\"fs-idp8946384\">Would you agree to buy 1 trillion (1,000,000,000,000) gold atoms for &#x1f4b2;5? Explain why or why not. Find the current price of gold at http:\/\/money.cnn.com\/data\/commodities\/ \\(\\left(\\text{1 troy ounce}=\\text{31.1 g}\\right)\\)<\/p><\/div><div data-type=\"solution\" class=\"solution\" id=\"fs-idp17552400\"><p id=\"fs-idp8960064\">This amount cannot be weighted by ordinary balances and is worthless.<\/p><\/div><\/div><\/div><div data-type=\"glossary\" class=\"textbox shaded\"><h2 data-type=\"glossary-title\">Glossary<\/h2><dl class=\"definition\" id=\"fs-idm47393392\"><dt>actual yield<\/dt><dd id=\"fs-idp169189008\">amount of product formed in a reaction\n<\/dd><\/dl><dl class=\"definition\" id=\"fs-idm46343008\"><dt>excess reactant<\/dt><dd id=\"fs-idp169769328\">reactant present in an amount greater than required by the reaction stoichiometry\n<\/dd><\/dl><dl class=\"definition\" id=\"fs-idp182610272\"><dt>limiting reactant<\/dt><dd id=\"fs-idp67500512\">reactant present in an amount lower than required by the reaction stoichiometry, thus limiting the amount of product generated<\/dd><\/dl><dl class=\"definition\" id=\"fs-idp51447712\"><dt>percent yield<\/dt><dd id=\"fs-idp172539984\">measure of the efficiency of a reaction, expressed as a percentage of the theoretical yield\n<\/dd><\/dl><dl class=\"definition\" id=\"fs-idp30967968\"><dt>theoretical yield<\/dt><dd id=\"fs-idm94035648\">amount of product that may be produced from a given amount of reactant(s) according to the reaction stoichiometry<\/dd><\/dl><\/div>","rendered":"<p>[latexpage]<\/p>\n<div class=\"textbox learning-objectives\">\n<h3 itemprop=\"educationalUse\">Learning Objectives<\/h3>\n<p>By the end of this section, you will be able to:<\/p>\n<ul>\n<li>Explain the concepts of theoretical yield and limiting reactants\/reagents.<\/li>\n<li>Derive the theoretical yield for a reaction under specified conditions.<\/li>\n<li>Calculate the percent yield for a reaction.<\/li>\n<\/ul>\n<\/div>\n<p id=\"fs-idp24998416\">The relative amounts of reactants and products represented in a balanced chemical equation are often referred to as <em data-effect=\"italics\">stoichiometric amounts<\/em>. All the exercises of the preceding module involved stoichiometric amounts of reactants. For example, when calculating the amount of product generated from a given amount of reactant, it was assumed that any other reactants required were available in stoichiometric amounts (or greater). In this module, more realistic situations are considered, in which reactants are not present in stoichiometric amounts.<\/p>\n<div class=\"bc-section section\" data-depth=\"1\" id=\"fs-idp5731792\">\n<h1 data-type=\"title\">Limiting Reactant<\/h1>\n<p id=\"fs-idp103911360\">Consider another food analogy, making grilled cheese sandwiches (<a href=\"#CNX_Chem_04_04_sandwich\" class=\"autogenerated-content\">[link]<\/a>):<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp59817360\">\\(\\text{1 slice of cheese}\\phantom{\\rule{0.2em}{0ex}}+\\phantom{\\rule{0.2em}{0ex}}\\text{2 slices of bread}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{1 sandwich}\\)<\/div>\n<p id=\"fs-idp39531056\">Stoichiometric amounts of sandwich ingredients for this recipe are bread and cheese slices in a 2:1 ratio. Provided with 28 slices of bread and 11 slices of cheese, one may prepare 11 sandwiches per the provided recipe, using all the provided cheese and having six slices of bread left over. In this scenario, the number of sandwiches prepared has been <em data-effect=\"italics\">limited<\/em> by the number of cheese slices, and the bread slices have been provided in <em data-effect=\"italics\">excess<\/em>.<\/p>\n<div class=\"bc-figure figure\" id=\"CNX_Chem_04_04_sandwich\">\n<div class=\"bc-figcaption figcaption\">Sandwich making can illustrate the concepts of limiting and excess reactants.<\/div>\n<p><span data-type=\"media\" id=\"fs-idm59912944\" data-alt=\"This figure has three rows showing the ingredients needed to make a sandwich. The first row reads, &#x201c;1 sandwich = 2 slices of bread + 1 slice of cheese.&#x201d; Two slices of bread and one slice of cheese are shown. The second row reads, &#x201c;Provided with: 28 slices of bread + 11 slices of cheese.&#x201d; There are 28 slices of bread and 11 slices of cheese shown. The third row reads, &#x201c;We can make: 11 sandwiches + 6 slices of bread left over.&#x201d; 11 sandwiches are shown with six extra slices of bread.\"><img decoding=\"async\" src=\"\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_sandwich.jpg\" data-media-type=\"image\/jpeg\" alt=\"This figure has three rows showing the ingredients needed to make a sandwich. The first row reads, &#x201c;1 sandwich = 2 slices of bread + 1 slice of cheese.&#x201d; Two slices of bread and one slice of cheese are shown. The second row reads, &#x201c;Provided with: 28 slices of bread + 11 slices of cheese.&#x201d; There are 28 slices of bread and 11 slices of cheese shown. The third row reads, &#x201c;We can make: 11 sandwiches + 6 slices of bread left over.&#x201d; 11 sandwiches are shown with six extra slices of bread.\" \/><\/span><\/div>\n<p id=\"fs-idm48112848\">Consider this concept now with regard to a chemical process, the reaction of hydrogen with chlorine to yield hydrogen chloride:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp62209424\">\\({\\text{H}}_{2}\\left(s\\right)+{\\text{Cl}}_{2}\\left(g\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{2HCl}\\left(g\\right)\\)<\/div>\n<p id=\"fs-idp157494624\">The balanced equation shows the hydrogen and chlorine react in a 1:1 stoichiometric ratio. If these reactants are provided in any other amounts, one of the reactants will nearly always be entirely consumed, thus limiting the amount of product that may be generated. This substance is the <span data-type=\"term\">limiting reactant<\/span>, and the other substance is the <span data-type=\"term\">excess reactant<\/span>. Identifying the limiting and excess reactants for a given situation requires computing the molar amounts of each reactant provided and comparing them to the stoichiometric amounts represented in the balanced chemical equation. For example, imagine combining 3 moles of H<sub>2<\/sub> and 2 moles of Cl<sub>2<\/sub>. This represents a 3:2 (or 1.5:1) ratio of hydrogen to chlorine present for reaction, which is greater than the stoichiometric ratio of 1:1. Hydrogen, therefore, is present in excess, and chlorine is the limiting reactant. Reaction of all the provided chlorine (2 mol) will consume 2 mol of the 3 mol of hydrogen provided, leaving 1 mol of hydrogen unreacted.<\/p>\n<p id=\"fs-idp22005824\">An alternative approach to identifying the limiting reactant involves comparing the amount of product expected for the complete reaction of each reactant. Each reactant amount is used to separately calculate the amount of product that would be formed per the reaction\u2019s stoichiometry. The reactant yielding the lesser amount of product is the limiting reactant. For the example in the previous paragraph, complete reaction of the hydrogen would yield<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp67209632\">\\(\\text{mol HCl produced}=\\text{3 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{H}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{2 mol HCl}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{H}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\text{6 mol HCl}\\)<\/div>\n<p id=\"fs-idm20022400\">Complete reaction of the provided chlorine would produce<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp10471024\">\\(\\text{mol HCl produced}=\\text{2 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Cl}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{2 mol HCl}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Cl}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\text{4 mol HCl}\\)<\/div>\n<p id=\"fs-idm39942944\">The chlorine will be completely consumed once 4 moles of HCl have been produced. Since enough hydrogen was provided to yield 6 moles of HCl, there will be unreacted hydrogen remaining once this reaction is complete. Chlorine, therefore, is the limiting reactant and hydrogen is the excess reactant (<a href=\"#CNX_Chem_04_04_limiting\" class=\"autogenerated-content\">[link]<\/a>).<\/p>\n<div class=\"bc-figure figure\" id=\"CNX_Chem_04_04_limiting\">\n<div class=\"bc-figcaption figcaption\">When H<sub>2<\/sub> and Cl<sub>2<\/sub> are combined in nonstoichiometric amounts, one of these reactants will limit the amount of HCl that can be produced. This illustration shows a reaction in which hydrogen is present in excess and chlorine is the limiting reactant.<\/div>\n<p><span data-type=\"media\" id=\"fs-idp182564432\" data-alt=\"The figure shows a space-filling molecular models reacting. There is a reaction arrow pointing to the right in the middle. To the left of the reaction arrow there are three molecules each consisting of two green spheres bonded together. There are also five molecules each consisting of two smaller, white spheres bonded together. Above these molecules is the label, &#x201c;Before reaction,&#x201d; and below these molecules is the label, &#x201c;6 H subscript 2 and 4 C l subscript 2.&#x201d; To the right of the reaction arrow, there are eight molecules each consisting of one green sphere bonded to a smaller white sphere. There are also two molecules each consisting of two white spheres bonded together. Above these molecules is the label, &#x201c;After reaction,&#x201d; and below these molecules is the label, &#x201c;8 H C l and 2 H subscript 2.&#x201d;\"><img decoding=\"async\" src=\"\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_limiting.jpg\" data-media-type=\"image\/jpeg\" alt=\"The figure shows a space-filling molecular models reacting. There is a reaction arrow pointing to the right in the middle. To the left of the reaction arrow there are three molecules each consisting of two green spheres bonded together. There are also five molecules each consisting of two smaller, white spheres bonded together. Above these molecules is the label, &#x201c;Before reaction,&#x201d; and below these molecules is the label, &#x201c;6 H subscript 2 and 4 C l subscript 2.&#x201d; To the right of the reaction arrow, there are eight molecules each consisting of one green sphere bonded to a smaller white sphere. There are also two molecules each consisting of two white spheres bonded together. Above these molecules is the label, &#x201c;After reaction,&#x201d; and below these molecules is the label, &#x201c;8 H C l and 2 H subscript 2.&#x201d;\" \/><\/span><\/div>\n<div data-type=\"note\" id=\"fs-idp162031984\" class=\"note chemistry link-to-learning\"><span data-type=\"media\" id=\"fs-idp155120000\" data-alt=\"\"><img decoding=\"async\" src=\"\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Interactive_200DPI.png\" data-media-type=\"image\/png\" alt=\"\" \/><\/span><\/p>\n<p id=\"fs-idm52028528\">View this interactive <a href=\"http:\/\/openstaxcollege.org\/l\/16reactantprod\">simulation<\/a> illustrating the concepts of limiting and excess reactants.<\/p>\n<\/div>\n<div data-type=\"example\" class=\"textbox examples\" id=\"fs-idp70587344\">\n<p id=\"fs-idm3583984\"><span data-type=\"title\">Identifying the Limiting Reactant<\/span><br \/>\nSilicon nitride is a very hard, high-temperature-resistant ceramic used as a component of turbine blades in jet engines. It is prepared according to the following equation:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idm22587536\">\\(\\text{3Si}\\left(s\\right)+2{\\text{N}}_{2}\\left(g\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}{\\text{N}}_{4}\\left(s\\right)\\)<\/div>\n<p id=\"fs-idp52711328\">Which is the limiting reactant when 2.00 g of Si and 1.50 g of N<sub>2<\/sub> react?<\/p>\n<p id=\"fs-idm18749312\"><span data-type=\"title\">Solution<\/span><br \/>\nCompute the provided molar amounts of reactants, and then compare these amounts to the balanced equation to identify the limiting reactant.<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp16604400\">\\(\\text{mol Si}=2.00\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g Si}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1 mol Si}}{28.09\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g Si}}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0712 mol Si}\\)<\/div>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp42210944\">\\(\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}=1.50\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}{28.02\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0535 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}\\)<\/div>\n<p id=\"fs-idp47057824\">The provided Si:N<sub>2<\/sub> molar ratio is:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp107313360\">\\(\\frac{\\text{0.0712 mol Si}}{\\text{0.0535 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1.33 mol Si}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\)<\/div>\n<p id=\"fs-idm100978944\">The stoichiometric Si:N<sub>2<\/sub> ratio is:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idm60202256\">\\(\\frac{\\text{3 mol Si}}{\\text{2 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1.5 mol Si}}{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\)<\/div>\n<p id=\"fs-idm1915936\">Comparing these ratios shows that Si is provided in a less-than-stoichiometric amount, and so is the limiting reactant.<\/p>\n<p id=\"fs-idm9495168\">Alternatively, compute the amount of product expected for complete reaction of each of the provided reactants. The 0.0712 moles of silicon would yield<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp161973712\">\\(\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\phantom{\\rule{0.2em}{0ex}}\\text{produced}=\\text{0.0712 mol Si}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{1\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}}{\\text{3 mol Si}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0237 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\)<\/div>\n<p id=\"fs-idm3691696\">while the 0.0535 moles of nitrogen would produce<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idm62043536\">\\(\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\phantom{\\rule{0.2em}{0ex}}\\text{produced}=\\text{0.0535 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{1 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}}{\\text{2 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{N}}_{2}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.0268 mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{Si}}_{3}\\phantom{\\rule{0.1em}{0ex}}{\\text{N}}_{4}\\)<\/div>\n<p id=\"fs-idm55343248\">Since silicon yields the lesser amount of product, it is the limiting reactant.<\/p>\n<p id=\"fs-idp70544208\"><span data-type=\"title\">Check Your Learning<\/span><br \/>\nWhich is the limiting reactant when 5.00 g of H<sub>2<\/sub> and 10.0 g of O<sub>2<\/sub> react and form water?<\/p>\n<div data-type=\"note\" class=\"note\" id=\"fs-idm19095728\">\n<div data-type=\"title\" class=\"title\">Answer:<\/div>\n<p id=\"fs-idp69025056\">O<sub>2<\/sub><\/p>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"bc-section section\" data-depth=\"1\" id=\"fs-idm20935792\">\n<h1 data-type=\"title\">Percent Yield<\/h1>\n<p id=\"fs-idm22072192\">The amount of product that <em data-effect=\"italics\">may be<\/em> produced by a reaction under specified conditions, as calculated per the stoichiometry of an appropriate balanced chemical equation, is called the <span data-type=\"term\">theoretical yield<\/span> of the reaction. In practice, the amount of product obtained is called the <span data-type=\"term\">actual yield<\/span>, and it is often less than the theoretical yield for a number of reasons. Some reactions are inherently inefficient, being accompanied by <em data-effect=\"italics\">side reactions<\/em> that generate other products. Others are, by nature, incomplete (consider the partial reactions of weak acids and bases discussed earlier in this chapter). Some products are difficult to collect without some loss, and so less than perfect recovery will reduce the actual yield. The extent to which a reaction\u2019s theoretical yield is achieved is commonly expressed as its <span data-type=\"term\">percent yield<\/span>:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp47653952\">\\(\\text{percent yield}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{actual yield}}{\\text{theoretical yield}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100%\\)<\/div>\n<p id=\"fs-idm52282816\">Actual and theoretical yields may be expressed as masses or molar amounts (or any other appropriate property; e.g., volume, if the product is a gas). As long as both yields are expressed using the same units, these units will cancel when percent yield is calculated.<\/p>\n<div data-type=\"example\" class=\"textbox examples\" id=\"fs-idm49018784\">\n<p id=\"fs-idm68646768\"><span data-type=\"title\">Calculation of Percent Yield<\/span><br \/>\nUpon reaction of 1.274 g of copper sulfate with excess zinc metal, 0.392 g copper metal was obtained according to the equation:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp101757552\">\\({\\text{CuSO}}_{4}\\left(aq\\right)+\\text{Zn}\\left(s\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{Cu}\\left(s\\right)+{\\text{ZnSO}}_{4}\\left(aq\\right)\\)<\/div>\n<p id=\"fs-idp104261712\">What is the percent yield?<\/p>\n<p id=\"fs-idp98890704\"><span data-type=\"title\">Solution<\/span><br \/>\nThe provided information identifies copper sulfate as the limiting reactant, and so the theoretical yield is found by the approach illustrated in the previous module, as shown here:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp104521856\">\\(1.274\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}}{159.62\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol Cu}}}{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CuSO}}_{4}}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}\\frac{63.55\\phantom{\\rule{0.2em}{0ex}}\\text{g Cu}}{1\\phantom{\\rule{0.2em}{0ex}}\\overline{)\\text{mol Cu}}}\\phantom{\\rule{0.2em}{0ex}}=\\text{0.5072 g Cu}\\)<\/div>\n<p id=\"fs-idp47540336\">Using this theoretical yield and the provided value for actual yield, the percent yield is calculated to be<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp217309712\">\\(\\text{percent yield}=\\left(\\frac{\\text{actual yield}}{\\text{theoretical yield}}\\right)\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100\\)<\/div>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp182503696\">\\(\\begin{array}{c}\\\\ \\text{percent yield}=\\left(\\frac{\\text{0.392 g Cu}}{\\text{0.5072 g Cu}}\\right)\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100\\\\ =77.3%\\end{array}\\)<\/div>\n<p id=\"fs-idp38988928\"><span data-type=\"title\">Check Your Learning<\/span>What is the percent yield of a reaction that produces 12.5 g of the gas Freon CF<sub>2<\/sub>Cl<sub>2<\/sub> from 32.9 g of CCl<sub>4<\/sub> and excess HF?<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp61435552\">\\({\\text{CCl}}_{4}+2\\text{HF}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{CF}}_{2}{\\text{Cl}}_{2}+2\\text{HCl}\\)<\/div>\n<div data-type=\"note\" class=\"note\" id=\"fs-idp47749920\">\n<div data-type=\"title\" class=\"title\">Answer:<\/div>\n<p id=\"fs-idp47655136\">48.3%<\/p>\n<\/div>\n<\/div>\n<div data-type=\"note\" id=\"fs-idm21958480\" class=\"note chemistry sciences-interconnect\">\n<div data-type=\"title\" class=\"title\">Green Chemistry and Atom Economy<\/div>\n<p id=\"fs-idm49080288\">The purposeful design of chemical products and processes that minimize the use of environmentally hazardous substances and the generation of waste is known as <em data-effect=\"italics\">green chemistry<\/em>. Green chemistry is a philosophical approach that is being applied to many areas of science and technology, and its practice is summarized by guidelines known as the \u201cTwelve Principles of Green Chemistry\u201d (see details at this <a href=\"http:\/\/openstaxcollege.org\/l\/16greenchem\">website<\/a>). One of the 12 principles is aimed specifically at maximizing the efficiency of processes for synthesizing chemical products. The <em data-effect=\"italics\">atom economy<\/em> of a process is a measure of this efficiency, defined as the percentage by mass of the final product of a synthesis relative to the masses of <em data-effect=\"italics\">all<\/em> the reactants used:<\/p>\n<div data-type=\"equation\" class=\"equation\" id=\"fs-idp116950848\">\\(\\text{atom economy}=\\phantom{\\rule{0.2em}{0ex}}\\frac{\\text{mass of product}}{\\text{mass of reactants}}\\phantom{\\rule{0.2em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100%\\)<\/div>\n<p id=\"fs-idp59920960\">Though the definition of atom economy at first glance appears very similar to that for percent yield, be aware that this property represents a difference in the <em data-effect=\"italics\">theoretical<\/em> efficiencies of <em data-effect=\"italics\">different<\/em> chemical processes. The percent yield of a given chemical process, on the other hand, evaluates the efficiency of a process by comparing the yield of product actually obtained to the maximum yield predicted by stoichiometry.<\/p>\n<p id=\"fs-idp167996000\">The synthesis of the common nonprescription pain medication, ibuprofen, nicely illustrates the success of a green chemistry approach (<a href=\"#CNX_Chem_04_04_GreenChem\" class=\"autogenerated-content\">[link]<\/a>). First marketed in the early 1960s, ibuprofen was produced using a six-step synthesis that required 514 g of reactants to generate each mole (206 g) of ibuprofen, an atom economy of 40%. In the 1990s, an alternative process was developed by the BHC Company (now BASF Corporation) that requires only three steps and has an atom economy of ~80%, nearly twice that of the original process. The BHC process generates significantly less chemical waste; uses less-hazardous and recyclable materials; and provides significant cost-savings to the manufacturer (and, subsequently, the consumer). In recognition of the positive environmental impact of the BHC process, the company received the Environmental Protection Agency\u2019s Greener Synthetic Pathways Award in 1997.<\/p>\n<div class=\"bc-figure figure\" id=\"CNX_Chem_04_04_GreenChem\">\n<div class=\"bc-figcaption figcaption\">(a) Ibuprofen is a popular nonprescription pain medication commonly sold as 200 mg tablets. (b) The BHC process for synthesizing ibuprofen requires only three steps and exhibits an impressive atom economy. (credit a: modification of work by Derrick Coetzee)<\/div>\n<p><span data-type=\"media\" id=\"fs-idp994368\" data-alt=\"This figure is labeled, &#x201c;a,&#x201d; and, &#x201c;b.&#x201d; Part a shows an open bottle of ibuprofen and a small pile of ibuprofen tablets beside it. Part b shows a reaction along with line structures. The first line structure looks like a diagonal line pointing down and to the right, then up and to the right and then down and to the right. At this point it connects to a hexagon with alternating double bonds. At the first trough there is a line that points straight down. From this structure, there is an arrow pointing downward. The arrow is labeled, &#x201c;H F,&#x201d; on the left and &#x201c;( C H subscript 3 C O ) subscript 2 O,&#x201d; on the right. The next line structure looks exactly like the first line structure, but it has a line angled down and to the right from the lower right point of the hexagon. This line is connected to another line which points straight down. Where these two lines meet, there is a double bond to an O atom. There is another arrow pointing downward, and it is labeled, &#x201c;H subscript 2, Raney N i.&#x201d; The next structure looks very similar to the second, previous structure, except in place of the double bonded O, there is a singly bonded O H group. There is a final reaction arrow pointing downward, and it is labeled, &#x201c;C O, [ P d ].&#x201d; The final structure is similar to the third, previous structure except in place of the O H group, there is another line that points down and to the right to an O H group. At these two lines, there is a double bonded O.\"><img decoding=\"async\" src=\"\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_GreenChem.jpg\" data-media-type=\"image\/jpeg\" alt=\"This figure is labeled, &#x201c;a,&#x201d; and, &#x201c;b.&#x201d; Part a shows an open bottle of ibuprofen and a small pile of ibuprofen tablets beside it. Part b shows a reaction along with line structures. The first line structure looks like a diagonal line pointing down and to the right, then up and to the right and then down and to the right. At this point it connects to a hexagon with alternating double bonds. At the first trough there is a line that points straight down. From this structure, there is an arrow pointing downward. The arrow is labeled, &#x201c;H F,&#x201d; on the left and &#x201c;( C H subscript 3 C O ) subscript 2 O,&#x201d; on the right. The next line structure looks exactly like the first line structure, but it has a line angled down and to the right from the lower right point of the hexagon. This line is connected to another line which points straight down. Where these two lines meet, there is a double bond to an O atom. There is another arrow pointing downward, and it is labeled, &#x201c;H subscript 2, Raney N i.&#x201d; The next structure looks very similar to the second, previous structure, except in place of the double bonded O, there is a singly bonded O H group. There is a final reaction arrow pointing downward, and it is labeled, &#x201c;C O, [ P d ].&#x201d; The final structure is similar to the third, previous structure except in place of the O H group, there is another line that points down and to the right to an O H group. At these two lines, there is a double bonded O.\" \/><\/span><\/div>\n<\/div>\n<\/div>\n<div class=\"summary\" data-depth=\"1\" id=\"fs-idm64875168\">\n<h1 data-type=\"title\">Key Concepts and Summary<\/h1>\n<p id=\"fs-idm5314032\">When reactions are carried out using less-than-stoichiometric quantities of reactants, the amount of product generated will be determined by the limiting reactant. The amount of product generated by a chemical reaction is its actual yield. This yield is often less than the amount of product predicted by the stoichiometry of the balanced chemical equation representing the reaction (its theoretical yield). The extent to which a reaction generates the theoretical amount of product is expressed as its percent yield.<\/p>\n<\/div>\n<div class=\"key-equations\" data-depth=\"1\" id=\"fs-idp36036608\">\n<h1 data-type=\"title\">Key Equations<\/h1>\n<ul id=\"fs-idp46607520\" data-bullet-style=\"bullet\">\n<li>\\(\\text{percent yield}=\\left(\\frac{\\text{actual yield}}{\\text{theoretical yield}}\\right)\\phantom{\\rule{0.4em}{0ex}}\u00d7\\phantom{\\rule{0.2em}{0ex}}100\\)<\/li>\n<\/ul>\n<\/div>\n<div class=\"exercises\" data-depth=\"1\" id=\"fs-idm49138160\">\n<h1 data-type=\"title\">Chemistry End of Chapter Exercises<\/h1>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm72007808\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp58837040\">\n<p id=\"fs-idp158025632\">The following quantities are placed in a container: 1.5 \\(\u00d7\\) 10<sup>24<\/sup> atoms of hydrogen, 1.0 mol of sulfur, and 88.0 g of diatomic oxygen.<\/p>\n<p id=\"fs-idp10708080\">(a) What is the total mass in grams for the collection of all three elements?<\/p>\n<p id=\"fs-idm64569408\">(b) What is the total number of moles of atoms for the three elements?<\/p>\n<p id=\"fs-idp46468992\">(c) If the mixture of the three elements formed a compound with molecules that contain two hydrogen atoms, one sulfur atom, and four oxygen atoms, which substance is consumed first?<\/p>\n<p id=\"fs-idm56547920\">(d) How many atoms of each remaining element would remain unreacted in the change described in (c)?<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm48529264\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp11141376\">\n<p id=\"fs-idp101303920\">What is the limiting reactant in a reaction that produces sodium chloride from 8 g of sodium and 8 g of diatomic chlorine?<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp69899344\">\n<p id=\"fs-idp22297728\">The limiting reactant is Cl2.<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm47361200\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp26308256\">\n<p id=\"fs-idp62729328\">Which of the postulates of Dalton&#8217;s atomic theory explains why we can calculate a theoretical yield for a chemical reaction?<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm38653920\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp98512336\">\n<p id=\"fs-idp10358416\">A student isolated 25 g of a compound following a procedure that would theoretically yield 81 g. What was his percent yield?<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idm45772288\">\n<p id=\"fs-idp46323152\">\\(\\text{Percent yield}=\\text{31%}\\)<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp61299760\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp221706336\">\n<p id=\"fs-idp6755168\">A sample of 0.53 g of carbon dioxide was obtained by heating 1.31 g of calcium carbonate. What is the percent yield for this reaction?<\/p>\n<p id=\"fs-idp4609920\">\\({\\text{CaCO}}_{3}\\left(s\\right)\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{CaO}\\left(s\\right)+{\\text{CO}}_{2}\\left(s\\right)\\)<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm57693344\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idm6761360\">\n<p id=\"fs-idp5068384\">Freon-12, CCl<sub>2<\/sub>F<sub>2<\/sub>, is prepared from CCl<sub>4<\/sub> by reaction with HF. The other product of this reaction is HCl. Outline the steps needed to determine the percent yield of a reaction that produces 12.5 g of CCl<sub>2<\/sub>F<sub>2<\/sub> from 32.9 g of CCl<sub>4<\/sub>. Freon-12 has been banned and is no longer used as a refrigerant because it catalyzes the decomposition of ozone and has a very long lifetime in the atmosphere. Determine the percent yield.<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp215202608\">\n<p id=\"fs-idp59773152\">\\(\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{4}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{4}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{2}{\\text{F}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{g}\\phantom{\\rule{0.2em}{0ex}}{\\text{CCl}}_{2}{\\text{F}}_{2},\\)\\(\\text{percent yield}=\\text{48.3%}\\)<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp99327968\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idm34002944\">\n<p id=\"fs-idp27686272\">Citric acid, C<sub>6<\/sub>H<sub>8<\/sub>O<sub>7<\/sub>, a component of jams, jellies, and fruity soft drinks, is prepared industrially via fermentation of sucrose by the mold <em data-effect=\"italics\">Aspergillus niger<\/em>. The equation representing this reaction is<\/p>\n<div data-type=\"newline\"><\/div>\n<p>\\({\\text{C}}_{12}{\\text{H}}_{22}{\\text{O}}_{11}+{\\text{H}}_{2}\\text{O}+3{\\text{O}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}2{\\text{C}}_{6}{\\text{H}}_{8}{\\text{O}}_{7}+4{\\text{H}}_{2}\\text{O}\\)<\/p>\n<p id=\"fs-idm8793984\">What mass of citric acid is produced from exactly 1 metric ton (1.000 \\(\u00d7\\) 10<sup>3<\/sup> kg) of sucrose if the yield is 92.30%?<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp34342864\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idm26296528\">\n<p id=\"fs-idm48555120\">Toluene, C<sub>6<\/sub>H<sub>5<\/sub>CH<sub>3<\/sub>, is oxidized by air under carefully controlled conditions to benzoic acid, C<sub>6<\/sub>H<sub>5<\/sub>CO<sub>2<\/sub>H, which is used to prepare the food preservative sodium benzoate, C<sub>6<\/sub>H<sub>5<\/sub>CO<sub>2<\/sub>Na. What is the percent yield of a reaction that converts 1.000 kg of toluene to 1.21 kg of benzoic acid?<\/p>\n<p id=\"fs-idp58383920\">\\(2{\\text{C}}_{6}{\\text{H}}_{5}{\\text{CH}}_{3}+3{\\text{O}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}2{\\text{C}}_{6}{\\text{H}}_{5}{\\text{CO}}_{2}\\text{H}+2{\\text{H}}_{2}\\text{O}\\)<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp161963872\">\n<p id=\"fs-idm18984464\">\\(\\text{percent yield}=\\text{91.3%}\\)<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm7557120\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp67978352\">\n<p id=\"fs-idp94004800\">In a laboratory experiment, the reaction of 3.0 mol of H<sub>2<\/sub> with 2.0 mol of I<sub>2<\/sub> produced 1.0 mol of HI. Determine the theoretical yield in grams and the percent yield for this reaction.<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm46525040\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp107511744\">\n<p id=\"fs-idm3264240\">Outline the steps needed to solve the following problem, then do the calculations. Ether, (C<sub>2<\/sub>H<sub>5<\/sub>)<sub>2<\/sub>O, which was originally used as an anesthetic but has been replaced by safer and more effective medications, is prepared by the reaction of ethanol with sulfuric acid.<\/p>\n<p id=\"fs-idm120301824\">2C<sub>2<\/sub>H<sub>5<\/sub>OH + H<sub>2<\/sub>SO<sub>4<\/sub> \u27f6 (C<sub>2<\/sub>H<sub>5<\/sub>)<sub>2<\/sub>O + H<sub>2<\/sub>SO<sub>4<\/sub>\u00b7H<sub>2<\/sub>O<\/p>\n<p id=\"fs-idp39307056\">What is the percent yield of ether if 1.17 L (d = 0.7134 g\/mL) is isolated from the reaction of 1.500 L of C<sub>2<\/sub>H<sub>5<\/sub>OH<\/p>\n<div data-type=\"newline\"><\/div>\n<p>(d = 0.7894 g\/mL)?<\/p><\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp98805200\">\n<p id=\"fs-idm48114608\">Convert mass of ethanol to moles of ethanol; relate the moles of ethanol to the moles of ether produced using the stoichiometry of the balanced equation. Convert moles of ether to grams; divide the actual grams of ether (determined through the density) by the theoretical mass to determine the percent yield; 87.6%<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm43326768\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp52880736\">\n<p id=\"fs-idp68715040\">Outline the steps needed to determine the limiting reactant when 30.0 g of propane, C<sub>3<\/sub>H<sub>8<\/sub>, is burned with 75.0 g of oxygen.<\/p>\n<p id=\"fs-idp201350320\">Determine the limiting reactant.<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm49726752\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp65728368\">\n<p id=\"fs-idp101414208\">Outline the steps needed to determine the limiting reactant when 0.50 mol of Cr and 0.75 mol of H<sub>3<\/sub>PO<sub>4<\/sub> react according to the following chemical equation.<\/p>\n<div data-type=\"newline\"><\/div>\n<p>\\(2\\text{Cr}+2{\\text{H}}_{3}{\\text{PO}}_{4}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}2{\\text{CrPO}}_{4}+3{\\text{H}}_{2}\\)<\/p>\n<p id=\"fs-idm522144\">Determine the limiting reactant.<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp31491504\">\n<p id=\"fs-idm38791728\">The conversion needed is \\(\\text{mol Cr}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}\\text{mol}\\phantom{\\rule{0.2em}{0ex}}{\\text{H}}_{3}{\\text{PO}}_{4}.\\) Then compare the amount of Cr to the amount of acid present. Cr is the limiting reactant.<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm21873728\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp26219728\">\n<p id=\"fs-idp47839312\">What is the limiting reactant when 1.50 g of lithium and 1.50 g of nitrogen combine to form lithium nitride, a component of advanced batteries, according to the following unbalanced equation?<\/p>\n<div data-type=\"newline\"><\/div>\n<p>\\(\\text{Li}+{\\text{N}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{Li}}_{3}\\text{N}\\)<\/p><\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp70668864\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idm47524112\">\n<p id=\"fs-idp62392768\">Uranium can be isolated from its ores by dissolving it as UO<sub>2<\/sub>(NO<sub>3<\/sub>)<sub>2<\/sub>, then separating it as solid UO<sub>2<\/sub>(C<sub>2<\/sub>O<sub>4<\/sub>)\u00b73H<sub>2<\/sub>O. Addition of 0.4031 g of sodium oxalate, Na<sub>2<\/sub>C<sub>2<\/sub>O<sub>4<\/sub>, to a solution containing 1.481 g of uranyl nitrate, UO<sub>2<\/sub>(NO<sub>3<\/sub>)<sub>2<\/sub>, yields 1.073 g of solid UO<sub>2<\/sub>(C<sub>2<\/sub>O<sub>4<\/sub>)\u00b73H<sub>2<\/sub>O.<\/p>\n<p id=\"fs-idm72766640\">Na<sub>2<\/sub>C<sub>2<\/sub>O<sub>4<\/sub> + UO<sub>2<\/sub>(NO<sub>3<\/sub>)<sub>2<\/sub> + 3H<sub>2<\/sub>O \u27f6 UO<sub>2<\/sub>(C<sub>2<\/sub>O<sub>4<\/sub>)\u00b73H<sub>2<\/sub>O + 2NaNO<sub>3<\/sub><\/p>\n<p id=\"fs-idp232896464\">Determine the limiting reactant and the percent yield of this reaction.<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp91587744\">\n<p id=\"fs-idp74993536\">Na<sub>2<\/sub>C<sub>2<\/sub>O<sub>4<\/sub> is the limiting reactant. percent yield = 86.6%<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm574992\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idm64892416\">\n<p id=\"fs-idm51429104\">How many molecules of C<sub>2<\/sub>H<sub>4<\/sub>Cl<sub>2<\/sub> can be prepared from 15 C<sub>2<\/sub>H<sub>4<\/sub> molecules and 8 Cl<sub>2<\/sub> molecules?<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm71853216\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp98807392\">\n<p id=\"fs-idp16595856\">How many molecules of the sweetener saccharin can be prepared from 30 C atoms, 25 H atoms, 12 O atoms, 8 S atoms, and 14 N atoms?<\/p>\n<p><span data-type=\"media\" id=\"fs-idp36082896\" data-alt=\"A structural formula is shown. A hexagonal ring of 6 C atoms with alternating double bonds has single H atoms bonded to four consecutive C atoms on the left side of the ring. The two C atoms on the right side of the ring, which are joined by a double bond, are also included in a 5 atom ring to their right. The C atom of this pair that is nearest the top of the structure is singly bonded to a C atom at the top of the 5 atom ring which has an O atom double bonded above. An N atom is singly bonded to the lower right of this same C atom. The N atom has an H atom bonded to its right and to its lower left, it is bonded to an S atom. The S atom is connected to the second C atom that is shared in the two rings. The S atom is also double bonded to an O atom to its lower right and is double bonded to a second O atom directly below it.\"><img decoding=\"async\" src=\"\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-content\/uploads\/sites\/27\/2017\/09\/CNX_Chem_04_04_saccharin_img.jpg\" data-media-type=\"image\/jpeg\" alt=\"A structural formula is shown. A hexagonal ring of 6 C atoms with alternating double bonds has single H atoms bonded to four consecutive C atoms on the left side of the ring. The two C atoms on the right side of the ring, which are joined by a double bond, are also included in a 5 atom ring to their right. The C atom of this pair that is nearest the top of the structure is singly bonded to a C atom at the top of the 5 atom ring which has an O atom double bonded above. An N atom is singly bonded to the lower right of this same C atom. The N atom has an H atom bonded to its right and to its lower left, it is bonded to an S atom. The S atom is connected to the second C atom that is shared in the two rings. The S atom is also double bonded to an O atom to its lower right and is double bonded to a second O atom directly below it.\" \/><\/span><\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp30000464\">\n<p id=\"fs-idp81228400\">Only four molecules can be made.<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idp41861648\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp130711232\">\n<p id=\"fs-idm1521280\">The phosphorus pentoxide used to produce phosphoric acid for cola soft drinks is prepared by burning phosphorus in oxygen.<\/p>\n<p id=\"fs-idm55530368\">(a) What is the limiting reactant when 0.200 mol of P<sub>4<\/sub> and 0.200 mol of O<sub>2<\/sub> react according to \\({\\text{P}}_{4}+5{\\text{O}}_{2}\\phantom{\\rule{0.2em}{0ex}}\u27f6\\phantom{\\rule{0.2em}{0ex}}{\\text{P}}_{4}{\\text{O}}_{10}\\)<\/p>\n<p id=\"fs-idp39236672\">(b) Calculate the percent yield if 10.0 g of P<sub>4<\/sub>O<sub>10<\/sub> is isolated from the reaction.<\/p>\n<\/div>\n<\/div>\n<div data-type=\"exercise\" class=\"exercise\" id=\"fs-idm19471568\">\n<div data-type=\"problem\" class=\"problem\" id=\"fs-idp215625584\">\n<p id=\"fs-idp8946384\">Would you agree to buy 1 trillion (1,000,000,000,000) gold atoms for &#x1f4b2;5? Explain why or why not. Find the current price of gold at http:\/\/money.cnn.com\/data\/commodities\/ \\(\\left(\\text{1 troy ounce}=\\text{31.1 g}\\right)\\)<\/p>\n<\/div>\n<div data-type=\"solution\" class=\"solution\" id=\"fs-idp17552400\">\n<p id=\"fs-idp8960064\">This amount cannot be weighted by ordinary balances and is worthless.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<div data-type=\"glossary\" class=\"textbox shaded\">\n<h2 data-type=\"glossary-title\">Glossary<\/h2>\n<dl class=\"definition\" id=\"fs-idm47393392\">\n<dt>actual yield<\/dt>\n<dd id=\"fs-idp169189008\">amount of product formed in a reaction\n<\/dd>\n<\/dl>\n<dl class=\"definition\" id=\"fs-idm46343008\">\n<dt>excess reactant<\/dt>\n<dd id=\"fs-idp169769328\">reactant present in an amount greater than required by the reaction stoichiometry\n<\/dd>\n<\/dl>\n<dl class=\"definition\" id=\"fs-idp182610272\">\n<dt>limiting reactant<\/dt>\n<dd id=\"fs-idp67500512\">reactant present in an amount lower than required by the reaction stoichiometry, thus limiting the amount of product generated<\/dd>\n<\/dl>\n<dl class=\"definition\" id=\"fs-idp51447712\">\n<dt>percent yield<\/dt>\n<dd id=\"fs-idp172539984\">measure of the efficiency of a reaction, expressed as a percentage of the theoretical yield\n<\/dd>\n<\/dl>\n<dl class=\"definition\" id=\"fs-idp30967968\">\n<dt>theoretical yield<\/dt>\n<dd id=\"fs-idm94035648\">amount of product that may be produced from a given amount of reactant(s) according to the reaction stoichiometry<\/dd>\n<\/dl>\n<\/div>\n","protected":false},"author":3,"menu_order":5,"template":"","meta":{"pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":["openstaxcollege"],"pb_section_license":"cc-by"},"chapter-type":[],"contributor":[57],"license":[50],"class_list":["post-195","chapter","type-chapter","status-publish","hentry","contributor-openstaxcollege","license-cc-by"],"part":168,"_links":{"self":[{"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/pressbooks\/v2\/chapters\/195","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/wp\/v2\/users\/3"}],"version-history":[{"count":0,"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/pressbooks\/v2\/chapters\/195\/revisions"}],"part":[{"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/pressbooks\/v2\/parts\/168"}],"metadata":[{"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/pressbooks\/v2\/chapters\/195\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/wp\/v2\/media?parent=195"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/pressbooks\/v2\/chapter-type?post=195"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/wp\/v2\/contributor?post=195"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/pressbooks-dev.oer.hawaii.edu\/chemistry\/wp-json\/wp\/v2\/license?post=195"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}