Bundle: Chemistry: An Atoms First Approach, 2nd, Loose-Leaf + OWLv2, 4 terms (24 months) Printed Access Card
Bundle: Chemistry: An Atoms First Approach, 2nd, Loose-Leaf + OWLv2, 4 terms (24 months) Printed Access Card
2nd Edition
ISBN: 9781305717633
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Chapter 17, Problem 140CP

(a)

Interpretation Introduction

Interpretation: The following equations are balanced by the half-reaction method.

Concept introduction: The chemical equation is said to be balanced when the number of atoms of chemical species on the reactant side is equal to the number of chemical species on the product side. In the half reaction method, each half reaction that is oxidation and reduction reaction is separately balanced.

To determine: The given balanced chemical reaction by the half-reaction method.

(a)

Expert Solution
Check Mark

Answer to Problem 140CP

Answer

The balanced redox reaction is,

2Fe(s)+8HCl(aq)2HFeCl4(aq)+3H2(g)

Explanation of Solution

Explanation

Given

The given reaction is,

Fe(s)+HCl(aq)HFeCl4(aq)+H2(g) .

In this equation, the oxidation state of hydrogen decreased from +1 to 0 and the oxidation state of iron increased from 0 to +3 . So, hydrogen undergoes reduction and iron undergoes oxidation.

Also, in this equation there are spectator ions, H+,Clin HFeCl4 and Cl in HCl which are not directly involved in the redox reaction so they are eliminated and the equation becomes,

Fe(s)+H+(aq)Fe3+(aq)+H2(g)

The reduction half cell reaction is,

H+(aq)H2(g)

The oxidation half cell reaction is,

Fe(s)Fe3+(aq)

Now balance H atoms in the reduction half reaction by adding H+ ions.

H+(aq)+H+(aq)H2(g)

Finally, balance charge using electrons.

2H+(aq)+2eH2(g)

Now the charge in oxidation half reaction using electrons is to be balanced.

Fe(s)Fe3+(aq)+3e

The oxidation half reaction is multiplied by 2 and the reduction reaction by 3 to cancel electrons and add them.

6H+(aq)+6e3H2(g)

2Fe(s)2Fe3+(aq)+6e

2Fe(s)+6H+(aq)2Fe3+(aq)+3H2(g)

The ion 2Fe3+ is replaced by 2HFeCl4 and upon doing so 2 more H+ ions are introduced to the left side of the reaction.

2Fe(s)+6H+(aq)2HFeCl4(aq)+3H2(g)

To balance chlorine atoms, eight moles of chloride ions were added.

2Fe(s)+8H+(aq)+8Cl(aq)2HFeCl4(aq)+3H2(g)

Hence, the balanced redox reaction is,

2Fe(s)+8HCl(aq)2HFeCl4(aq)+3H2(g) .

(b)

Interpretation Introduction

Interpretation: The following equations are balanced by the half-reaction method.

Concept introduction: The chemical equation is said to be balanced when the number of atoms of chemical species on the reactant side is equal to the number of chemical species on the product side. In the half reaction method, each half reaction that is oxidation and reduction reaction is separately balanced.

To determine: The given balanced chemical reaction by the half-reaction method.

(b)

Expert Solution
Check Mark

Answer to Problem 140CP

Answer

The balanced reaction is,

IO3(aq)+6H+(aq)+8I(aq)3I3(aq)+3H2O(l) .

Explanation of Solution

Explanation

Given

IO3(aq)+I(aq)AcidI3(aq) .

The reduction half reaction is,

IO3(aq)I3(aq)

The oxidation state of chlorine decreased from 1 to 13 .

The oxidation half reaction is,

I(aq)I3(aq)

The oxidation state of iodine increased from 1 in I to 13 in I3 .

Now all the elements except H and O in reduction half reaction are balanced and then O atoms using H2O .

3IO3(aq)I3(aq)+9H2O(l)

Then H atoms are balanced by adding H+ ions.

3IO3(aq)+18H+(aq)I3(aq)+9H2O(l)

Finally, the charge is balanced by using electrons.

3IO3(aq)+18H+(aq)+16eI3(aq)+9H2O(l)

Now all elements except H and O in oxidation half reaction are balanced.

3I(aq)I3(aq)

As there are no O and H atoms, the charge is balanced by using electrons.

3I(aq)I3(aq)+2e

The oxidation half reaction is multiplied by 8 and added to the other half reaction by cancelling the similar terms.

3IO3(aq)+18H+(aq)+16eI3(aq)+9H2O(l)

24I(aq)8I3(aq)+16e

3IO3(aq)+18H+(aq)+24I(aq)9I3(aq)+9H2O(l)

This is simplified further by dividing it by 3.

IO3(aq)+6H+(aq)+8I(aq)3I3(aq)+3H2O(l)

Hence, the balanced reaction is,

IO3(aq)+6H+(aq)+8I(aq)3I3(aq)+3H2O(l) .

(c)

Interpretation Introduction

Interpretation: The following equations are balanced by the half-reaction method.

Concept introduction: The chemical equation is said to be balanced when the number of atoms of chemical species on the reactant side is equal to the number of chemical species on the product side. In the half reaction method, each half reaction that is oxidation and reduction reaction is separately balanced.

To determine: The given balanced chemical reaction by the half-reaction method.

(c)

Expert Solution
Check Mark

Answer to Problem 140CP

Answer

The balanced reaction is,

Cr(NCS)64(aq)+54H2O(l)+97Ce4+(aq)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)+108H+(aq)+97Ce3+(aq)

Explanation of Solution

Explanation

Given

The given reaction is,

Cr(NCS)64(aq)+Ce4+(aq)AcidCr3+(aq)+Ce3+(aq)+NO3(aq)+CO2(g)+SO4(aq) .

The reduction half reaction is,

Ce4+(aq)AcidCe3+(aq)

The oxidation half reaction is,

Cr(NCS)64(aq)AcidCr3+(aq)+NO3(aq)+CO2(g)+SO4(aq)

Now all elements except H and O in oxidation half reaction are balanced.

Cr(NCS)64(aq)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)

And balance oxygen atoms using H2O .

Cr(NCS)64(aq)+54H2O(l)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)

Then H atoms are balanced by adding H+ ions.

Cr(NCS)64(aq)+54H2O(l)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)+108H+(aq)

Finally, the charge is balanced by using electrons.

Cr(NCS)64(aq)+54H2O(l)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)+108H+(aq)+97e

Now balance all elements except H and O in reduction half reaction.

Ce4+(aq)Ce3+(aq)

As there are no O and H atoms the charge is balanced by using electrons.

Ce4+(aq)+eCe3+(aq)

The reduction half reaction is multiplied by 97 and is added to the other half reaction by cancelling the similar terms.

Cr(NCS)64(aq)+54H2O(l)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)+108H+(aq)+97e

97Ce4+(aq)+97e97Ce3+(aq)

The overall balanced reaction is,

Cr(NCS)64(aq)+54H2O(l)+97Ce4+(aq)AcidCr3+(aq)+6NO3(aq)+6CO2(g)+6SO4(aq)+108H+(aq)+97Ce3+(aq)

(d)

Interpretation Introduction

Interpretation: The following equations are balanced by the half-reaction method.

Concept introduction: The chemical equation is said to be balanced when the number of atoms of chemical species on the reactant side is equal to the number of chemical species on the product side. In the half reaction method, each half reaction that is oxidation and reduction reaction is separately balanced.

To determine: The given balanced chemical reaction by the half-reaction method.

(d)

Expert Solution
Check Mark

Answer to Problem 140CP

Answer

The balanced reaction is,

2CrI3(s)+27Cl2(g)+64OH(aq)2CrO4(aq)+6IO4(aq)+54Cl(aq)+32H2O(l)

Explanation of Solution

Explanation

Given

The given reaction is,

CrI3(s)+Cl2(g)BaseCrO4(aq)+IO4(aq)+Cl(aq) .

Chromium is oxidized from +3 to +6 , iodine is oxidized from 1 to +7 and chlorine is reduced from 0 to 1 .

The reduction half reaction is,

Cl2(g)Cl(aq)

The oxidation half reaction is,

CrI3(s)CrO4(aq)+IO4(aq)

Now all elements except H and O in oxidation half reaction are balanced

CrI3(s)CrO4(aq)+3IO4(aq)

And then oxygen atoms are balanced by using H2O .

CrI3(s)+16H2O(l)CrO4(aq)+3IO4(aq)

Then hydrogen atoms are balanced by adding H+ ions.

CrI3(s)+16H2O(l)CrO4(aq)+3IO4(aq)+32H+(aq)

Finally, the charge is balanced by using electrons.

CrI3(s)+16H2O(l)CrO4(aq)+3IO4(aq)+32H+(aq)+27e

Now all elements except H and O in oxidation half reaction are balanced

Cl2(g)2Cl(aq)

As there are no O and H atoms, the charge is balanced using electrons.

Cl2(g)+2e2Cl(aq)

The reduction half reactions are multiplied by 27 and oxidation half reaction by 2 and were added by cancelling similar terms.

2CrI3(s)+32H2O(l)2CrO4(aq)+6IO4(aq)+64H+(aq)+54e

27Cl2(g)+54e54Cl(aq)

2CrI3(s)+32H2O(l)+27Cl2(g)2CrO4(aq)+6IO4(aq)+64H+(aq)+54Cl(aq)

In basic medium, OH ions are added on both sides to neutralize H+ ions.

2CrI3(s)+32H2O(l)+27Cl2(g)+64OH(aq)2CrO4(aq)+6IO4(aq)+64H+(aq)+54Cl(aq)+64OH(aq)

Hence, the balanced reaction is,

2CrI3(s)+27Cl2(g)+64OH(aq)2CrO4(aq)+6IO4(aq)+54Cl(aq)+32H2O(l)

(e)

Interpretation Introduction

Interpretation: The following equations are balanced by the half-reaction method.

Concept introduction: The chemical equation is said to be balanced when the number of atoms of chemical species on the reactant side is equal to the number of chemical species on the product side. In the half reaction method, each half reaction that is oxidation and reduction reaction is separately balanced.

To determine: The given balanced chemical reaction by the half-reaction method.

(e)

Expert Solution
Check Mark

Answer to Problem 140CP

Answer

The balanced reaction is,

Fe(CN)64(aq)+49Ce4+(aq)+216OH(aq)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+33H2O(l)+49Ce(OH)3(aq)

Explanation of Solution

Explanation

Given

Fe(CN)64(aq)+Ce4+(aq)BaseCe(OH)3(aq)+Fe(OH)3(s)+CO32(aq)+NO3(aq) .

The reduction half reaction is.

Ce4+(aq)Ce(OH)3(aq)

The oxidation half reaction is,

Fe(CN)64(aq)+Fe(OH)3(s)+CO32(aq)+NO3(aq)

Now all elements except H and O in oxidation half reaction are balanced

Fe(CN)64(aq)+Fe(OH)3(s)+6CO32(aq)+6NO3(aq)

And then balance O atoms using H2O .

Fe(CN)64(aq)+36H2O(l)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)

Then H atoms are balanced by adding H+ ions,

Fe(CN)64(aq)+36H2O(l)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+69H+(aq)

Finally, the charge is balanced by using electrons.

Fe(CN)64(aq)+36H2O(l)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+69H+(aq)+49e

Now the O atoms are balanced by using H2O in reduction half reaction.

Ce4+(aq)+3H2O(l)Ce(OH)3(aq)

Then H atoms are balanced by adding H+ ions.

Ce4+(aq)+3H2O(l)Ce(OH)3(aq)+3H+(aq)

The charge is balanced by using electrons.

Ce4+(aq)+3H2O(l)+eCe(OH)3(aq)+3H+(aq)

The reduction half reaction is multiplied by 49 and is added to the other half reaction by cancelling the similar terms.

Fe(CN)64(aq)+36H2O(l)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+69H+(aq)+49e

49Ce4+(aq)+147H2O(l)+49e49Ce(OH)3(aq)+147H+(aq)

Fe(CN)64(aq)+183H2O(l)+49Ce4+(aq)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+216H+(aq)+49Ce(OH)3(aq)

In basic medium, OH ions are added on both sides to neutralize H+ ions.

Fe(CN)64(aq)+183H2O(l)+49Ce4+(aq)+216OH(aq)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+216H+(aq)+49Ce(OH)3(aq)+216OH(aq)

Hence, the balanced reaction is,

Fe(CN)64(aq)+49Ce4+(aq)+216OH(aq)Fe(OH)3(s)+6CO32(aq)+6NO3(aq)+33H2O(l)+49Ce(OH)3(aq)

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Chapter 17 Solutions

Bundle: Chemistry: An Atoms First Approach, 2nd, Loose-Leaf + OWLv2, 4 terms (24 months) Printed Access Card

Ch. 17 - What is a half-reaction? Why must the number of...Ch. 17 - Galvanic cells harness spontaneous...Ch. 17 - Table 17-1 lists common half-reactions along with...Ch. 17 - Prob. 4RQCh. 17 - The Nernst equation allows determination of the...Ch. 17 - Prob. 6RQCh. 17 - Prob. 7RQCh. 17 - Prob. 8RQCh. 17 - What characterizes an electrolytic cell? What is...Ch. 17 - Sketch a galvanic cell, and explain how it works....
Ch. 17 - Prob. 2ALQCh. 17 - Prob. 3ALQCh. 17 - Prob. 4ALQCh. 17 - Sketch a cell that forms iron metal from iron(II)...Ch. 17 - Which of the following is the best reducing agent:...Ch. 17 - Prob. 7ALQCh. 17 - Prob. 8ALQCh. 17 - Explain why cell potentials are not multiplied by...Ch. 17 - What is the difference between and ? When is equal...Ch. 17 - Prob. 11ALQCh. 17 - Look up the reduction potential for Fe3+ to Fe2+....Ch. 17 - Prob. 13ALQCh. 17 - Is the following statement true or false?...Ch. 17 - Prob. 15RORRCh. 17 - Assign oxidation numbers to all the atoms in each...Ch. 17 - Specify which of the following equations represent...Ch. 17 - The Ostwald process for the commercial production...Ch. 17 - Prob. 19QCh. 17 - Prob. 20QCh. 17 - When magnesium metal is added to a beaker of...Ch. 17 - How can one construct a galvanic cell from two...Ch. 17 - The free energy change for a reaction, G, is an...Ch. 17 - What is wrong with the following statement: The...Ch. 17 - When jump-starting a car with a dead battery, the...Ch. 17 - Prob. 26QCh. 17 - Prob. 27QCh. 17 - Consider the following electrochemical cell: a. If...Ch. 17 - Balance the following oxidationreduction reactions...Ch. 17 - Prob. 30ECh. 17 - Prob. 31ECh. 17 - Prob. 32ECh. 17 - Chlorine gas was first prepared in 1774 by C. W....Ch. 17 - Gold metal will not dissolve in either...Ch. 17 - Prob. 35ECh. 17 - Consider the following galvanic cell: a. Label the...Ch. 17 - Prob. 37ECh. 17 - Sketch the galvanic cells based on the following...Ch. 17 - Prob. 39ECh. 17 - Prob. 40ECh. 17 - Prob. 41ECh. 17 - Prob. 42ECh. 17 - Prob. 43ECh. 17 - Give the standard line notation for each cell in...Ch. 17 - Prob. 45ECh. 17 - Prob. 46ECh. 17 - Prob. 47ECh. 17 - Prob. 48ECh. 17 - Prob. 49ECh. 17 - The amount of manganese in steel is determined by...Ch. 17 - Prob. 51ECh. 17 - Prob. 52ECh. 17 - Estimate for the half-reaction 2H2O+2eH2+2OH given...Ch. 17 - Prob. 54ECh. 17 - Glucose is the major fuel for most living cells....Ch. 17 - Direct methanol fuel cells (DMFCs) have shown some...Ch. 17 - Prob. 57ECh. 17 - Using data from Table 17-1, place the following in...Ch. 17 - Answer the following questions using data from...Ch. 17 - Prob. 60ECh. 17 - Consider only the species (at standard conditions)...Ch. 17 - Prob. 62ECh. 17 - Prob. 63ECh. 17 - Prob. 64ECh. 17 - Prob. 65ECh. 17 - Prob. 66ECh. 17 - A galvanic cell is based on the following...Ch. 17 - Prob. 68ECh. 17 - Consider the concentration cell shown below....Ch. 17 - Prob. 70ECh. 17 - The overall reaction in the lead storage battery...Ch. 17 - Prob. 72ECh. 17 - Consider the cell described below:...Ch. 17 - Consider the cell described below:...Ch. 17 - Prob. 75ECh. 17 - Prob. 76ECh. 17 - Prob. 77ECh. 17 - Prob. 78ECh. 17 - Prob. 79ECh. 17 - An electrochemical cell consists of a nickel metal...Ch. 17 - An electrochemical cell consists of a standard...Ch. 17 - Prob. 82ECh. 17 - Consider a concentration cell that has both...Ch. 17 - Prob. 84ECh. 17 - Prob. 85ECh. 17 - Prob. 86ECh. 17 - Consider the following galvanic cell at 25C:...Ch. 17 - Prob. 88ECh. 17 - Prob. 89ECh. 17 - Prob. 90ECh. 17 - Prob. 91ECh. 17 - The solubility product for CuI(s) is 1.1 102...Ch. 17 - How long will it take to plate out each of the...Ch. 17 - The electrolysis of BiO+ produces pure bismuth....Ch. 17 - What mass of each of the following substances can...Ch. 17 - Prob. 96ECh. 17 - An unknown metal M is electrolyzed. It took 74.1 s...Ch. 17 - Electrolysis of an alkaline earth metal chloride...Ch. 17 - What volume of F2 gas, at 25C and 1.00 atm, is...Ch. 17 - What volumes of H2(g) and O2(g) at STP are...Ch. 17 - Prob. 101ECh. 17 - A factory wants to produce 1.00 103 kg barium...Ch. 17 - It took 2.30 min using a current of 2.00 A to...Ch. 17 - A solution containing Pt4+ is electrolyzed with a...Ch. 17 - A solution at 25C contains 1.0 M Cd2+, 1.0 M Ag+,...Ch. 17 - Consider the following half-reactions: A...Ch. 17 - In the electrolysis of an aqueous solution of...Ch. 17 - Copper can be plated onto a spoon by placing the...Ch. 17 - Prob. 109ECh. 17 - Prob. 110ECh. 17 - Prob. 111ECh. 17 - What reaction will take place at the Cathode and...Ch. 17 - Gold is produced electrochemically from an aqueous...Ch. 17 - Prob. 114AECh. 17 - The saturated calomel electrode. abbreviated SCE....Ch. 17 - Consider the following half-reactions: Explain why...Ch. 17 - Consider the standard galvanic cell based on the...Ch. 17 - Prob. 118AECh. 17 - The black silver sulfide discoloration of...Ch. 17 - Prob. 120AECh. 17 - When aluminum foil is placed in hydrochloric acid,...Ch. 17 - Prob. 122AECh. 17 - Prob. 123AECh. 17 - The overall reaction and equilibrium constant...Ch. 17 - What is the maximum work that can be obtained from...Ch. 17 - The overall reaction and standard cell potential...Ch. 17 - Prob. 127AECh. 17 - Prob. 128AECh. 17 - Prob. 129AECh. 17 - Prob. 130AECh. 17 - Prob. 131AECh. 17 - Prob. 132AECh. 17 - Prob. 133AECh. 17 - Prob. 134CWPCh. 17 - Consider a galvanic cell based on the following...Ch. 17 - Consider a galvanic cell based on the following...Ch. 17 - Consider a galvanic cell based on the following...Ch. 17 - An electrochemical cell consists of a silver metal...Ch. 17 - An aqueous solution of PdCl2 is electrolyzed for...Ch. 17 - Prob. 140CPCh. 17 - Prob. 141CPCh. 17 - The overall reaction in the lead storage battery...Ch. 17 - Consider the following galvanic cell: Calculate...Ch. 17 - Prob. 144CPCh. 17 - A galvanic cell is based on the following...Ch. 17 - Prob. 146CPCh. 17 - The measurement of pH using a glass electrode...Ch. 17 - Prob. 148CPCh. 17 - A galvanic cell is based on the following...Ch. 17 - Prob. 150CPCh. 17 - Prob. 151CPCh. 17 - Prob. 152CPCh. 17 - Consider the following galvanic cell: A 15 0-mole...Ch. 17 - When copper reacts with nitric acid, a mixture of...Ch. 17 - The following standard reduction potentials have...Ch. 17 - An electrochemical cell is set up using the...Ch. 17 - Three electrochemical cells were connected in...Ch. 17 - A silver concentration cell is set up at 25C as...Ch. 17 - A galvanic cell is based on the following...Ch. 17 - Prob. 160MP
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