OWLv2 with MindTap Reader, 4 terms (24 months) Printed Access Card for Zumdahl/Zumdahl/DeCoste’s Chemistry, 10th Edition
OWLv2 with MindTap Reader, 4 terms (24 months) Printed Access Card for Zumdahl/Zumdahl/DeCoste’s Chemistry, 10th Edition
10th Edition
ISBN: 9781305957558
Author: Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
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Chapter 4, Problem 155CP

Chromium has been investigated as a coating for steel cans. The thickness of the chromium film is determined by dissolving a sample of a can in acid and oxidizing the resulting Cr3+ to Cr2O72− with the peroxydisulfate ion:

S2O82−(aq) + Cr3+(aq) + H2O(l) → Cr2O72−(aq) + SO42−(aq) + H+(aq) (Unbalanced)

After removal of unreacted S2O82− an excess of ferrous ammonium sulfate [Fe(NH4)2(SO4)2·6H2O] is added, reacting with Cr2O72− produced from the first reaction. The unreacted Fe2+ from the excess ferrous ammonium sulfate is titrated with a separate K2Cr2O7 solution. The reaction is:

H+(aq) + Fe2+(aq) + Cr2O72−(aq) → Fe3+(aq) + Cr3+(aq) + H2O(l) (Unbalanced)

  1. a. Write balanced chemical equations for the two reactions.
  2. b. In one analysis, a 40.0-cm2 sample of a chromium-plated can was treated according to this procedure. After dissolution and removal of excess S2O82−, 3.000 g of Fe(NH4)2(SO4)2·6H2O was added. It took 8.58 mL of 0.0520 M K2Cr2O7 solution to completely react with the excess Fe2+. Calculate the thickness of the chromium film on the can. (The density of chromium is 7.19 g/cm3)

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The balanced equation for the given reactions and the thickness of chromium film on the can are needed to be determined if the 8.58mL of 0.0520M K2Cr2O7 is completely react with 3.0g of Fe(NH4)2(SO4)2.6H2O.

Concept introduction:

Steps followed to balance a redox (reduction-oxidation) reaction occurs in acidic medium,

  • Redox reactions can be separated into two half-reactions, such as oxidation reaction and reduction reaction.
  • Balancing of oxygen and hydrogen are carried out by adding water and ions in the half-reactions, and balance the number of electrons then make the number of electrons in oxidation and reduction reactions equal by multiplying by integers.
  • Club the both half-reactions.
  • Mole ratio between the reactants of a reaction are depends upon the coefficients of reactants in a balanced chemical equation.
  • Equation for number of grams of a substance from its number of moles is,

Number of moles×Molecularmass in grams=Numberofgrams

  • Equation for volume from density is,

    Volume=MassDensity

  • Equation for finding thickness from volume and area is,

thickness=volumearea

Answer to Problem 155CP

The balanced equations for the given reactions are,

3S2O82-(aq)+2Cr3+(aq)+7H2O(aq)Cr2O72-(aq)+14H+(aq)+6SO42-(aq)

6Fe2+(aq)+14H++Cr2O72-(aq)2Cr3+(aq)+7H2O+6Fe3+(aq)

Explanation of Solution

To determine: The balanced equations for the given reactions.

The chemical equations for the given titration is,

S2O82-(aq)+Cr3+(aq)+H2O(l)Cr2O72-(aq)+SO42-(aq)+H+(aq)

H++Fe2+(aq)+Cr2O72-(aq)Fe3+(aq)+Cr3+(aq)+H2O(l)

Steps (I, II and III) followed for balance the redox equations,

Balance the reaction,

S2O82-(aq)+Cr3+(aq)+H2O(l)Cr2O72-(aq)+SO42-(aq)+H+(aq)

I- Separate the redox reaction into two, such as oxidation and reduction.

Therefore,

Oxidation reaction is,

Cr3+(aq)Cr2O72-(aq)

Reduction reaction is,

S2O82-(aq)SO42-(aq)

II- Balance the atoms and electrons in each half-reactions,

Balancing of oxygen and hydrogen are carried out by adding water and ions in the half-reactions

2Cr3+(aq)+7H2O(aq)Cr2O72-(aq)+14H+(aq)+6e

S2O82-(aq)+2e2SO42-(aq)

Equalizing the numbers of electrons in oxidation and reduction reactions,

3S2O82-(aq)+6e6SO42-(aq)

III- club the both half-reactions into a single equation,

3S2O82-(aq)+6e+2Cr3+(aq)+7H2O(aq)Cr2O72-(aq)+14H+(aq)+6e+6SO42-(aq)

The same number of electrons and molecules in the both sides will cancel each other,

So, the balanced equation for the given equation is,

3S2O82-(aq)+2Cr3+(aq)+7H2O(aq)Cr2O72-(aq)+14H+(aq)+6SO42-(aq)

Balance the reaction,

H++Fe2+(aq)+Cr2O72-(aq)Fe3+(aq)+Cr3+(aq)+H2O(l)

I- Separate the redox reaction into two, such as oxidation and reduction.

Therefore,

Oxidation reaction is,

Fe2+(aq)Fe3+(aq)

Reduction reaction is,

Cr2O72-(aq)Cr3+(aq)

II- Balance the atoms and electrons in each half-reactions,

Balancing of oxygen and hydrogen are carried out by adding water and ions in the half-reactions

Fe2+(aq)Fe3+(aq)+1e

Cr2O72-(aq)+14H+(aq)+6e2Cr3+(aq)+7H2O(aq)

Equalizing the numbers of electrons in oxidation and reduction reactions,

6Fe2+(aq)6Fe3+(aq)+6e

III- club the both half-reactions into a single equation,

6Fe2+(aq)+Cr2O72-(aq)+14H+(aq)+6e2Cr3+(aq)+7H2O(aq)+6Fe3+(aq)+6e

The same number of electrons and molecules in the both sides will cancel each other,

So, the balanced equation for the given equation is,

6Fe2+(aq)+14H++Cr2O72-(aq)2Cr3+(aq)+7H2O+6Fe3+(aq)

Conclusion

The molarity of the permanganate solution is determined by using the given data’s for the titration.

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The balanced equation for the given reactions and the thickness of chromium film on the can are needed to be determined if the 8.58mL of 0.0520M K2Cr2O7 is completely react with 3.0g of Fe(NH4)2(SO4)2.6H2O.

Concept introduction:

Steps followed to balance a redox (reduction-oxidation) reaction occurs in acidic medium,

  • Redox reactions can be separated into two half-reactions, such as oxidation reaction and reduction reaction.
  • Balancing of oxygen and hydrogen are carried out by adding water and ions in the half-reactions, and balance the number of electrons then make the number of electrons in oxidation and reduction reactions equal by multiplying by integers.
  • Club the both half-reactions.
  • Mole ratio between the reactants of a reaction are depends upon the coefficients of reactants in a balanced chemical equation.
  • Equation for number of grams of a substance from its number of moles is,

Number of moles×Molecularmass in grams=Numberofgrams

  • Equation for volume from density is,

    Volume=MassDensity

  • Equation for finding thickness from volume and area is,

thickness=volumearea

Answer to Problem 155CP

The thickness of chromium film is 4.6105×10-4cm.

Explanation of Solution

To determine: The molarity of the permanganate if the 28.97mL of permanganate is required to titrate 0.1058g of oxalic acid.

The mass of Fe(NH4)2(SO4)2.6H2O reacted in the titration is given as 3.0g.

Equation for number of moles of a substance is,

numberofmoles=givenmassmolarmass

Therefore,

The number of moles of Fe(NH4)2(SO4)2.6H2O is,

numberofmoles=3.0g392.13g=0.7651×10-2mol

There is 1 mole of Fe2+ ion in 1 mole of Fe(NH4)2(SO4)2.6H2O. So the number of mole of Fe2+ is 0.7651×10-2mol(equals to the number of moles of Fe(NH4)2(SO4)2.6H2O).

The balanced equation of the reaction of Fe2+ ions and 8.58mL of 0.0520M K2Cr2O7 is,

6Fe2+(aq)+14H++Cr2O72-(aq)2Cr3+(aq)+7H2O+6Fe3+(aq)

The mole ratio between Fe2+ and Cr2O72- ions in the balanced equation is 6:1or1:16.

Therefore,

The number of moles of Cr2O72- ionsreacted with 0.7651×10-2mol of Fe2+ ionsis,

16×0.7651×10-2mol=0.1275×10-2mol

The balanced equation for dissolution of chromium is,

3S2O82-(aq)+2Cr3+(aq)+7H2O(aq)Cr2O72-(aq)+14H+(aq)+6SO42-(aq)

The mole ratio between Cr2O72- and Cr2+ ions in the balanced equation is 1:2.

Therefore,

The number of moles chromium in the can is,

2×0.1275×10-2mol=0.255×10-2mol

Equation for number of grams of a substance from its number of moles is,

Number of moles×Molecularmass in grams=Numberofgrams

Therefore,

The mass of chromium in the can is,

0.255×10-2mol×51.9961g=0.1326g

The density of chromium is given as 7.19g/cm3.

Equation for volume from density is,

Volume=MassDensity

Therefore,

Volume=0.1326g7.19g/cm3=0.01844cm3

The area of the chromium plate is given as 40cm2.

Equation for finding thickness from volume and area is,

thickness=volumearea

Therefore,

thickness=0.01844cm340cm2=4.6105×10-4cm

Conclusion

The molarity of the permanganate solution is determined by using the given data’s for the titration.

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Chapter 4 Solutions

OWLv2 with MindTap Reader, 4 terms (24 months) Printed Access Card for Zumdahl/Zumdahl/DeCoste’s Chemistry, 10th Edition

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