EBK INTRODUCTORY CHEMISTRY
EBK INTRODUCTORY CHEMISTRY
8th Edition
ISBN: 8220100480485
Author: DECOSTE
Publisher: CENGAGE L
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 9, Problem 50QAP

For each of the following unbalanced chemical equations, suppose that exactly 15.0 g of each reactant are taken. Using Before− Change−After (BCA) tables, determine which reactant is limiting, and calculate what mass of each product is expected. (Assume that the limiting reactant is completely consumed.)

msp;  Al ( s ) + HCl ( a q ) AlCl 3 ( a q ) + H 2 ( g )

msp;  NaOH ( a q ) + CO 2 ( g ) Na 2 CO 3 ( a q ) + H 2 O ( l )

msp;  Pb ( NO 3 ) 2 ( a q ) + HCl ( a q ) PbCl 2 ( s ) + NHO 3 ( a q )

msp;  K ( s ) + I 2 ( s ) KI ( s )

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

Using Before-Change-After (BCA) tables, the limiting reactant should be determined in the given unbalanced equation, supposing that exactly 15.0 g of each reactant are taken. And mass of each product expected should be calculated assuming that the limiting reactant is completely consumed.

Concept Introduction:

To determine how much product can be formed from a given mixture of reactants, we have to look for the reactant that is limiting; the one that runs out first and thus limits the amount of product that can form. The reactant that runs out first limiting the amount of products form is called the limiting reactant or limiting reagent.

To determine limiting reactant, first we should have a balanced equation. Then we include the information in Before-Change-After table.

E.g

Balanced equationN2       +         3H2             2NH3

Before

Change

After

Starting amounts of reactants are presented in before row. The change row represents how much of each substance reacts or is produced. The after row represents how much of each substance remain in the final reaction mixture. The ratio of the numbers in the change row has to be the same as the ratio of the coefficients in the balanced equation.

Answer to Problem 50QAP

The limiting reagent is HCl.

Mass of AlCl3 produce = 18.3 g

Mass of H2 produce = 0.415 g.

Explanation of Solution

Number of moles of Al = 15.0 g26.98 g/mol = 0.556 mol

Number of moles of HCl = 15.0 g36.458 g/mol = 0.411 mol

Possibility I: if Al runs out first

Balanced equation 2Al(s)      +        6HCl(aq)            2AlCl3(aq)    +      3H2(g)

Before 0.556 mol 0.411 mol 0 0

Change 0.556 mol 1.67 mol +0.556 mol +0.834 mol

_________________________________________________________________________

After 0 1.26 mol 0.556 mol 0.834 mol

Possibility II: if HCl runs out first

Balanced equation2Al(s)      +        6HCl(aq)            2AlCl3(aq)    +      3H2(g)

Before0.556 mol 0.411 mol 0 0

Change0.137 mol 0.411 mol +0.137 mol +0.206 mol

_________________________________________________________________________

After 0.419 mol 0 0.137 mol 0.206 mol

According to BCA tables, Al is not the limiting reactant as to react with all the Al we need 1.26 mol more HCl than we have. If HCl is the limiting reagent no negative results seen in the After column. So the limiting reagent is HCl.

Mass of AlCl3 produce = 0.137 mol × 133.33 g/mol = 18.3 g

Mass of H2 produce = 0.206 mol × 2.016 g/mol = 0.415 g.

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

Using Before-Change-After (BCA) tables, the limiting reactant should be determined in the given unbalanced equation, supposing that exactly 15.0 g of each reactant are taken. And mass of each product expected should be calculated assuming that the limiting reactant is completely consumed.

Concept Introduction:

To determine how much product can be formed from a given mixture of reactants, we have to look for the reactant that is limiting; the one that runs out first and thus limits the amount of product that can form. The reactant that runs out first limiting the amount of products form is called the limiting reactant or limiting reagent.

To determine limiting reactant, first we should have a balanced equation. Then we include the information in Before-Change-After table.

E.g

Balanced equationN2       +         3H2             2NH3

Before

Change

After

Starting amounts of reactants are presented in before row. The change row represents how much of each substance reacts or is produced. The after row represents how much of each substance remain in the final reaction mixture. The ratio of the numbers in the change row has to be the same as the ratio of the coefficients in the balanced equation.

Answer to Problem 50QAP

The limiting reagent is NaOH

Mass of Na2 CO3 produce = 19.9 g

Mass of H2 O produce = 3.39 g.

Explanation of Solution

Number of moles of NaOH = 15.0 g39.998 g/mol = 0.375 mol

Number of moles of CO2 = 15.0 g44.01 g/mol = 0.341 mol

Possibility I: if NaOH runs out first

Balanced equation2NaOH(aq)      +          CO2(g)                Na2CO3(aq)        +         H2O(l)

Before0.375 mol 0.341 mol 0 0

Change0.375 mol 0.188 mol +0.188 mol +0.188 mol

______________________________________________________________________________

After 0 0.153 mol 0.188 mol 0.188 mol

Possibility II: if CO2 runs out first

Balanced equation2NaOH(aq)      +          CO2(g)                Na2CO3(aq)        +         H2O(l)

Befor0.375 mol 0.341 mol 0 0

Change0.682 mol 0.341 mol +0.341 mol +0.341 mol

_________________________________________________________________________

After 0.307 mol 0 0.341 mol 0.341 mol

According to BCA tables, CO2 is not the limiting reactant as to react with all the NaOH, we need 0.307 mol more NaOH than we have. If NaOH is the limiting reagent no negative results seen in the After column. So the limiting reagent is NaOH.

Mass of Na2 CO3 produce = 0.188 mol × 105.99 g/mol = 19.9 g

Mass of H2 O produce = 0.188 mol × 18.016 g/mol = 3.39 g.

Expert Solution
Check Mark
Interpretation Introduction

(c)

Interpretation:

Using Before-Change-After (BCA) tables, the limiting reactant should be determined in the given unbalanced equation, supposing that exactly 15.0 g of each reactant are taken. And mass of each product expected should be calculated assuming that the limiting reactant is completely consumed.

Concept Introduction:

To determine how much product can be formed from a given mixture of reactants, we have to look for the reactant that is limiting; the one that runs out first and thus limits the amount of product that can form. The reactant that runs out first limiting the amount of products form is called the limiting reactant or limiting reagent.

To determine limiting reactant, first we should have a balanced equation. Then we include the information in Before-Change-After table.

E.g

Balanced equationN2       +         3H2             2NH3

Before

Change

After

Starting amounts of reactants are presented in before row. The change row represents how much of each substance reacts or is produced. The after row represents how much of each substance remain in the final reaction mixture. The ratio of the numbers in the change row has to be the same as the ratio of the coefficients in the balanced equation.

Answer to Problem 50QAP

The limiting reagent is Pb(NO3 )2 Mass of PbCl2 produce = 12.6 g

Mass of HNO3 produce = 5.71 g.

Explanation of Solution

Number of moles of Pb(NO3 )2 = 15.0 g331.22 g/mol = 0.0453 mol

Number of moles of HCl = 15.0 g36.458 g/mol = 0.411 mol

Possibility I: if Pb(NO3 )2 runs out first

Balanced equation Pb(NO3)2(aq)      +          2HCl(aq)                 PbCl2(s)        +         2HNO3(aq)

Before 0.0453 mol 0.411 mol 0 0

Change 0.0453 mol 0.0906 mol +0.0453 mol +0.0906 mol

______________________________________________________________________________

After 0 0.320 mol 0.0453 mol 0.0906 mol

Possibility II: if HCl runs out first

Balanced equation Pb(NO3)2(aq)      +          2HCl(aq)                 PbCl2(s)        +         2HNO3(aq)

Before 0.0453 mol 0.411 mol 0 0

Change 0.206 mol 0.411 mol +0.206 mol +0.411 mol

_________________________________________________________________________

After 0.161 mol 0 0.206 mol 0.411 mol

According to BCA tables, HCl is not the limiting reactant as, to react with all the HCl, we need 0.161 mol more Pb(NO3 )2 than we have. If Pb(NO3 )2 is the limiting reagent no negative results seen in the After column. So the limiting reagent is Pb(NO3 )2.

Mass of PbCl2 produce = 0.0453 mol × 278.1 g/mol = 12.6 g

Mass of HNO3 produce = 0.0906 mol × 63.018 g/mol = 5.71 g.

Expert Solution
Check Mark
Interpretation Introduction

(d)

Interpretation:

Using Before-Change-After (BCA) tables, the limiting reactant should be determined in the given unbalanced equation, supposing that exactly 15.0 g of each reactant are taken. And mass of each product expected should be calculated assuming that the limiting reactant is completely consumed.

Concept Introduction:

To determine how much product can be formed from a given mixture of reactants, we have to look for the reactant that is limiting; the one that runs out first and thus limits the amount of product that can form. The reactant that runs out first limiting the amount of products form is called the limiting reactant or limiting reagent.

To determine limiting reactant, first we should have a balanced equation. Then we include the information in Before-Change-After table.

E.g

Balanced equationN2       +         3H2             2NH3

Before

Change

After

Starting amounts of reactants are presented in before row. The change row represents how much of each substance reacts or is produced. The after row represents how much of each substance remain in the final reaction mixture. The ratio of the numbers in the change row has to be the same as the ratio of the coefficients in the balanced equation.

Answer to Problem 50QAP

The limiting reagent is I2.

Mass of KI produce = 19.6 g.

Explanation of Solution

Number of moles of K = 15.0 g39.00 g/mol = 0.385 mol

Number of moles of I2 = 15.0 g253.8 g/mol = 0.0591 mol

Possibility I: if K runs out first

Balanced equation 2K(s)      +          I2(s)                 2KI(s) 

Before 0.385 mol 0.0591 mol 0

Change 0.385 mol 0.193 mol +0.385 mol

______________________________________________________

After 0 -0.134 mol 0.385 mol

Possibility II: if I2 runs out first

Balanced equation 2K(s)      +          I2(s)                 2KI(s) 

Before 0.385 mol 0.0591 mol 0

Change 0.118 mol 0.0591 mol +0.118 mol

______________________________________________________

After 0.267mol 0 0.118 mol

According to BCA tables, K is not the limiting reactant as, to react with all the K, we need 0.134 mol more I2 than we have. If I2 is the limiting reagent no negative results seen in the After column. So the limiting reagent is I2.

Mass of KI produce = 0.118 mol × 165.9 g/mol = 19.6 g.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
Show work with explanation needed. don't give Ai generated solution. avoid handwritten Solution
Show work. Don't give Ai generated solution
Examine the reaction below. Highlight all bonds that have broken in the reactant. Br H H₂C-C- -H 5 H-C-H H-C-H BIE 们 OH H H H₂C-C= H-C-H H-C-H

Chapter 9 Solutions

EBK INTRODUCTORY CHEMISTRY

Ch. 9 - Nitrogen (N2) and hydrogen (H2)react to form...Ch. 9 - Prob. 4ALQCh. 9 - ou know that chemical A reacts with chemical B....Ch. 9 - f 10.0 g of hydrogen gas is reacted with 10.0 g of...Ch. 9 - Prob. 7ALQCh. 9 - Prob. 8ALQCh. 9 - hat happens to the weight of an iron bar when it...Ch. 9 - Prob. 10ALQCh. 9 - What is meant by the term mole ratio? Give an...Ch. 9 - Which would produce a greater number of moles of...Ch. 9 - Consider a reaction represented by the following...Ch. 9 - Prob. 14ALQCh. 9 - Consider the balanced chemical equation...Ch. 9 - Which of the following reaction mixtures would...Ch. 9 - Baking powder is a mixture of cream of tartar...Ch. 9 - You have seven closed containers each with equal...Ch. 9 - Prob. 19ALQCh. 9 - Prob. 20ALQCh. 9 - Consider the reaction between NO(g)and...Ch. 9 - hat do the coefficients of a balanced chemical...Ch. 9 - he vigorous reaction between aluminum and iodine...Ch. 9 - Prob. 3QAPCh. 9 - hich of the following statements is true for the...Ch. 9 - or each of the following reactions, give the...Ch. 9 - or each of the following reactions, give the...Ch. 9 - Prob. 7QAPCh. 9 - Prob. 8QAPCh. 9 - onsider the balanced chemical equation...Ch. 9 - Prob. 10QAPCh. 9 - For each of the following balanced chemical...Ch. 9 - Prob. 12QAPCh. 9 - For each of the following balanced chemical...Ch. 9 - For each of the following balanced chemical...Ch. 9 - For each of the following unbalanced equations,...Ch. 9 - For each of the following unbalanced equations,...Ch. 9 - What quantity serves as the conversion factor...Ch. 9 - Prob. 18QAPCh. 9 - Using the average atomic masses given inside the...Ch. 9 - Using the average atomic masses given inside the...Ch. 9 - Using the average atomic masses given inside the...Ch. 9 - Using the average atomic masses given inside the...Ch. 9 - For each of the following unbalanced equations,...Ch. 9 - For each of the following unbalanced equations,...Ch. 9 - For each of the following unbalanced equations,...Ch. 9 - Prob. 26QAPCh. 9 - “Smelling salts,” which are used to revive someone...Ch. 9 - Calcium carbide, CaC2, can be produced in an...Ch. 9 - When elemental carbon is burned in the open...Ch. 9 - If baking soda (sodium hydrogen carbonate) is...Ch. 9 - Although we usually think of substances as...Ch. 9 - When yeast is added to a solution of glucose or...Ch. 9 - Sulfurous acid is unstable in aqueous solution and...Ch. 9 - Small quantities of oxygen gas can be generated in...Ch. 9 - Elemental phosphorus bums in oxygen with an...Ch. 9 - Prob. 36QAPCh. 9 - Ammonium nitrate has been used as a high explosive...Ch. 9 - If common sugars arc heated too strongly, they...Ch. 9 - Thionyl chloride, SOCl2, is used as a very...Ch. 9 - Prob. 40QAPCh. 9 - Prob. 41QAPCh. 9 - Explain how one determines which reactant in a...Ch. 9 - Consider the equation: 2A+B5C. If 10.0 g of A...Ch. 9 - According to the law of conservation of mass, mass...Ch. 9 - For each of the following unbalanced reactions,...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - Lead(II) carbonate, also called “white lead,” was...Ch. 9 - Copper(II) sulfate has been used extensively as a...Ch. 9 - Lead(II) oxide from an ore can be reduced to...Ch. 9 - If steel wool (iron) is heated until it glows and...Ch. 9 - A common method for determining how much chloride...Ch. 9 - Although many sulfate salts are soluble in water,...Ch. 9 - Hydrogen peroxide is used as a cleaning agent in...Ch. 9 - Silicon carbide, SIC, is one of the hardest...Ch. 9 - Prob. 59QAPCh. 9 - The text explains that one reason why the actual...Ch. 9 - According to his prelaboratory theoretical yield...Ch. 9 - An air bag is deployed by utilizing the following...Ch. 9 - The compound sodium thiosutfate pentahydrate....Ch. 9 - Alkali metal hydroxides are sometimes used to...Ch. 9 - Although they were formerly called the inert...Ch. 9 - Solid copper can be produced by passing gaseous...Ch. 9 - Prob. 67APCh. 9 - Prob. 68APCh. 9 - Prob. 69APCh. 9 - When the sugar glucose, C6H12O6, is burned in air,...Ch. 9 - When elemental copper is strongly heated with...Ch. 9 - Barium chloride solutions are used in chemical...Ch. 9 - The traditional method of analysis for the amount...Ch. 9 - For each of the following reactions, give the...Ch. 9 - Prob. 75APCh. 9 - Consider the balanced equation...Ch. 9 - For each of the following balanced reactions,...Ch. 9 - For each of the following balanced equations,...Ch. 9 - Prob. 79APCh. 9 - Using the average atomic masses given inside the...Ch. 9 - For each of the following incomplete and...Ch. 9 - Prob. 82APCh. 9 - Prob. 83APCh. 9 - It sodium peroxide is added to water, elemental...Ch. 9 - When elemental copper is placed in a solution of...Ch. 9 - When small quantities of elemental hydrogen gas...Ch. 9 - The gaseous hydrocarbon acetylene, C2H2, is used...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - For each of the following unbalanced chemical...Ch. 9 - Hydrazine N2H4, emits a large quantity of energy...Ch. 9 - Prob. 91APCh. 9 - Before going to lab, a student read in his lab...Ch. 9 - Consider the following unbalanced chemical...Ch. 9 - Prob. 94CPCh. 9 - Consider the following unbalanced chemical...Ch. 9 - Over the years, the thermite reaction has been...Ch. 9 - Consider the following unbalanced chemical...Ch. 9 - Ammonia gas reacts with sodium metal to form...Ch. 9 - Prob. 99CPCh. 9 - he production capacity for acrylonitrile (C3H3N)in...Ch. 9 - Prob. 1CRCh. 9 - erhaps the most important concept in introductory...Ch. 9 - ow do we know that 16.00 g of oxygen Contains the...Ch. 9 - Prob. 4CRCh. 9 - hat is meant by the percent composition by mass...Ch. 9 - Prob. 6CRCh. 9 - Prob. 7CRCh. 9 - Prob. 8CRCh. 9 - Prob. 9CRCh. 9 - Consider the unbalanced equation for the...Ch. 9 - Prob. 11CRCh. 9 - What is meant by a limiting reactant in a...Ch. 9 - Prob. 13CRCh. 9 - Prob. 14CRCh. 9 - Prob. 15CRCh. 9 - Prob. 16CRCh. 9 - A compound was analyzed and was found to have the...Ch. 9 - Prob. 18CRCh. 9 - Prob. 19CRCh. 9 - Prob. 20CRCh. 9 - A traditional analysis for samples containing...
Knowledge Booster
Background pattern image
Chemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Introductory Chemistry: A Foundation
Chemistry
ISBN:9781285199030
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
Chemistry for Engineering Students
Chemistry
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Cengage Learning
Text book image
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Text book image
General Chemistry - Standalone book (MindTap Cour...
Chemistry
ISBN:9781305580343
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
Publisher:Cengage Learning
Text book image
Introduction to General, Organic and Biochemistry
Chemistry
ISBN:9781285869759
Author:Frederick A. Bettelheim, William H. Brown, Mary K. Campbell, Shawn O. Farrell, Omar Torres
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Bonding (Ionic, Covalent & Metallic) - GCSE Chemistry; Author: Science Shorts;https://www.youtube.com/watch?v=p9MA6Od-zBA;License: Standard YouTube License, CC-BY
Stoichiometry - Chemistry for Massive Creatures: Crash Course Chemistry #6; Author: Crash Course;https://www.youtube.com/watch?v=UL1jmJaUkaQ;License: Standard YouTube License, CC-BY