Bundle: Chemistry, 9th, Loose-Leaf + OWLv2 24-Months Printed Access Card
Bundle: Chemistry, 9th, Loose-Leaf + OWLv2 24-Months Printed Access Card
9th Edition
ISBN: 9781305367760
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Chapter 18, Problem 159MP

A galvanic cell is based on the following half-reactions:

Chapter 18, Problem 159MP, A galvanic cell is based on the following half-reactions: In this cell, the copper compartment , example  1

In this cell, the copper compartment contains a copper electrode and [Cu2+] = 1.00 M, and the vanadium compartment contains a vanadium electrode and V2+ at an unknown concentration. The compartment containing the vanadium (1.00 L of solution) was titrated with 0.0800 M H2EDTA2−, resulting in the reaction

H 2 EDTA 2 ( a q ) + V 2 + ( a q ) VEDTA 2 ( a q ) + 2H + ( a q ) K = ?

The potential of the cell was monitored to determine the stoichiometric point for the process, which occurred at a volume of 500.0 mL H2EDTA2− solution added. At the stoichiometric point, Chapter 18, Problem 159MP, A galvanic cell is based on the following half-reactions: In this cell, the copper compartment , example  2 was observed to be 1 .98 V. The solution was buffered at a pH of 10.00.

a. Calculate Chapter 18, Problem 159MP, A galvanic cell is based on the following half-reactions: In this cell, the copper compartment , example  3 before the titration was carried out.

b. Calculate the value of the equilibrium constant, K, for the titration reaction.

c. Calculate Chapter 18, Problem 159MP, A galvanic cell is based on the following half-reactions: In this cell, the copper compartment , example  4 at the halfway point in the titration.

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The Ecell  before the titration was carried out is to be calculated. The value of the equilibrium constant (K).for the titration reaction and the value of Ecell at the halfway point in the titration are to be calculated.

Concept introduction: Electrochemical cell is a combination of two half cells in which the two electrodes are joined by a wire and a salt bridge. Electrons flow from anode where oxidation occurs to cathode where reduction takes place. Cell potential is defined as the measure of energy per unit charge available from the redox reaction to carry out the reaction. Equilibrium constant is defined as the ratio of the concentration of products and the concentration of the reactants.

To determine: The Ecell before the titration was carried out.

Answer to Problem 159MP

The cell potential before titration is -1.5V.

Explanation of Solution

Explanation

The concentration of [Cu2+] is 1.00 M.

The volume of vanadium solution is 1.00 L.

The concentration of H2EDTA2 is 0.0800 M.

The volume of H2EDTA2 solution added is 500.0 mL.

The Ecell is 1.98 V.

The value of pH is 10.00.

The titration reaction of 1.00 L vanadium with 0.0800 M H2EDTA2 is shown as follows,

H2EDTA2(aq)+V2+(aq)VEDTA2(aq)+2H+(aq)

When 500.0 mL H2EDTA2 is added, the initial moles of V2+ present in the solution is same as that of added moles of H2EDTA2. So, the initial moles of V2+ are determined as follows,

Initial moles of V2+=moles of H2EDTA2 added=(Molarity)H2EDTA2×VH2EDTA2

Substitute the values of molarity and volume of H2EDTA2 in the above expression to calculate the moles of V2+.

Initial moles of V2+=moles of H2EDTA2 added=(Molarity)H2EDTA2×VH2EDTA2=(0.0800 M)(500 mL)(1 L1000 mL)=0.0400 mol

Thus, the initial moles of V2+ are 0.0400 mol.

The concentration of V2+ in 1.00 L solution is calculated by using the expression,

Molarity of V2+=Moles of V2+Liters Solution

Substitute the value of moles of V2+ and volume of solution in the above expression to calculate the molarity (concentration) of V2+.

Molarity of V2+=Moles of V2+Liters Solution=0.0400 mol1.00 L=0.0400 M

Hence, the concentration of V2+ is 0.0400 M.

The half cell reaction for galvanic cell containing 1.00 M Cu2+(aq) and V2+(aq) is written as follows,

Cu(s)Cu2+(aq)+2e      Eanodeο=0.34 V (1)

V2+(aq)+2eV(s)        Ecathodeο=1.20 V (2)

The overall reaction is,

Cu(s)+V2+(aq)Cu2+(aq)+V(s)      (3)

Where,

  • Eanodeο is the standard reduction potential of anode.
  • Ecathodeο is the standard reduction potential of cathode.

Cell potential of the reaction is the difference in voltage between the cathode and anode. The cell potential is calculated by using the expression,

Eο=Eο(cathode)Eο(anode)

Substitute the value of standard reduction potential of anode and cathode in the above expression to calculate the value of cell potential of the reaction.

Eο=Eο(cathode)Eο(anode)=1.20 V(0.34 V)=1.54 V

Hence, the standard cell potential of reaction is 1.54 V.

The number of electrons involved in the reaction is two. The cell potential is calculated by using the Nernst equation.

Ecell=Ecellο0.0591nlog[V2+][Cu2+]

Where,

  • n is the number of electrons in the cell reaction.
  • Ecellο is the standard cell potential.

Substitute the values of standard cell potential, n and molar concentrations of vanadium and copper ions in the above expression to calculate the cell potential.

Ecell=Ecellο0.0591nlog[V2+][Cu2+]=1.54 V0.05912log[0.0400 M][1.00 M]=1.5 V_

Hence, the cell potential before titration is 1.5 V_.

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The Ecell before the titration was carried out is to be calculated. The value of the equilibrium constant (K) for the titration reaction and the value of Ecell at the halfway point in the titration are to be calculated.

Concept introduction: Electrochemical cell is a combination of two half cells in which the two electrodes are joined by a wire and a salt bridge. Electrons flow from anode where oxidation occurs to cathode where reduction takes place. Cell potential is defined as the measure of energy per unit charge available from the redox reaction to carry out the reaction. Equilibrium constant is defined as the ratio of the concentration of products and the concentration of the reactants.

To determine: The value of the equilibrium constant (K) for the titration reaction.

Answer to Problem 159MP

The equilibrium constant is 1.6×108_.

Explanation of Solution

Explanation

Given

Given

Ecell=1.98 V

The concentration of V2+(aq) is calculated by using Nernst equation.

Ecell=Ecellο0.0591nlog[V2+][Cu2+]

Substitute the values of Ecell, Ecellο  and n in the above expression to calculate the concentration of V2+(aq).

Ecell=Ecellο0.0591nlog[V2+][Cu2+]1.98 V=1.5 V0.0591nlog[V2+][1.00 M][V2+]=(1.00 M)1014.89=1.3×1015 M

Thus, the concentration of V2+(aq) is 1.3×1015 M.

The titration reaction shows that equal moles of reactant are reacted. So, the equilibrium concentration of reactants VEDTA2 and V2+ is same. Hence, the concentration of H2EDTA2 at equilibrium is 1.3×1015 M.

V2+ concentration is very less in comparison to its initial concentration. Also, the moles of VEDTA2 produced is same in number as that of initial moles of V2+(0.0400 M). Thus the concentration of VEDTA2 after addition of 500.0 mL(or 0.500 L) H2EDTA2 is calculated as,

Molarity of VEDTA2=Moles of VEDTA2Liters Solution

Substitute the value of moles of VEDTA2 and volume of solution in the above expression to calculate the molarity (concentration) of V2+.

Molarity of VEDTA2=Moles of VEDTA2Liters Solution=0.0400 mol1.00 L+0.500 L=0.0267 M

Hence, the concentration of VEDTA2  is 0.0267 M.

The buffered solution pH=10.00. So, pH does not change. The concentration of H+ is calculated by using the pH formula,

pH=log[H+]10=log[H+][H+]=1.0×1010 M

Thus, the concentration of H+ is 1.0×1010 M.

The equilibrium constant is calculated by using the given expression,

K=[VEDTA2][H+]2[H2EDTA2][V2+]

Substitute the values of given concentrations in the above expression to calculate the equilibrium constant.

K=[VEDTA2][H+]2[H2EDTA2][V2+]=(0.0267)(1.0×1010)2(1.3×1015)(1.3×1015)=1.6×108_

Hence, the equilibrium constant is 1.6×108_.

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The Ecell before the titration was carried out is to be calculated. The value of the equilibrium constant (K) for the titration reaction and the value of Ecell at the halfway point in the titration are to be calculated.

Concept introduction: Electrochemical cell is a combination of two half cells in which the two electrodes are joined by a wire and a salt bridge. Electrons flow from anode where oxidation occurs to cathode where reduction takes place. Cell potential is defined as the measure of energy per unit charge available from the redox reaction to carry out the reaction. Equilibrium constant is defined as the ratio of the concentration of products and the concentration of the reactants.

To determine: The value of Ecell at the halfway point in the titration.

Answer to Problem 159MP

Solution

The cell potential at halfway titration is 1.49 V_.

Explanation of Solution

Explanation

Given

At halfway equivalence point, the volume of solution added to 1.00 L solution becomes half. The total volume of solution is calculated as,

Total volume=Vvanadium+Vadded=1.00 L+0.500 L2=1.25 L

Thus, the total volume of solution is 1.25 L.

The initial 0.0400 M of V2+ also become half at equivalence point that is 0.0200 M.Hence, the concentration of V2+ at this equivalence point is calculated as,

Molarity of V2+=Moles of V2+Liters Solution

Substitute the value of moles of V2+ and volume of solution in the above expression to calculate the molarity (concentration) of V2+.

Molarity of V2+=Moles of V2+Liters Solution=0.0200 mol1.25 L=0.016 M

Hence, the concentration of V2+ is 0.016 M.

The number of electrons involved in the reaction is two. The cell potential is calculated by using the Nernst equation.

Ecell=Ecellο0.0591nlog[V2+][Cu2+]

Where,

  • n is the number of electrons in the cell reaction.
  • Ecellο is the standard cell potential.

Substitute the values of standard cell potential, n and molar concentrations of vanadium and copper ions in the above expression to calculate the cell potential.

Ecell=Ecellο0.0591nlog[V2+][Cu2+]=1.54 V0.05912log[0.016 M][1.00 M]=1.49 V_

Hence, the cell potential at halfway titration is 1.49 V_.

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Chapter 18 Solutions

Bundle: Chemistry, 9th, Loose-Leaf + OWLv2 24-Months Printed Access Card

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If...Ch. 18 - Consider the concentration cell shown below....Ch. 18 - Consider a concentration cell similar to the one...Ch. 18 - The overall reaction in the lead storage battery...Ch. 18 - Calculate the pH of the cathode compartment for...Ch. 18 - Consider the cell described below:...Ch. 18 - Consider the cell described below:...Ch. 18 - Calculate G and K at 25C for the reactions in...Ch. 18 - Calculate G and K at 25C for the reactions in...Ch. 18 - Consider the galvanic cell based on the following...Ch. 18 - Consider the galvanic cell based on the following...Ch. 18 - An electrochemical cell consists of a standard...Ch. 18 - Prob. 80ECh. 18 - An electrochemical cell consists of a standard...Ch. 18 - An electrochemical cell consists of a nickel metal...Ch. 18 - Consider a concentration cell that has both...Ch. 18 - You have a concentration cell in which the cathode...Ch. 18 - Under standard conditions, what reaction occurs,...Ch. 18 - A disproportionation reaction involves a substance...Ch. 18 - Consider the following galvanic cell at 25C:...Ch. 18 - An electrochemical cell consists of a silver metal...Ch. 18 - Prob. 89ECh. 18 - For the following half-reaction, = 2.07 V:...Ch. 18 - Calculate for the following half-reaction:...Ch. 18 - The solubility product for CuI(s) is 1.1 102...Ch. 18 - How long will it take to plate out each of the...Ch. 18 - The electrolysis of BiO+ produces pure bismuth....Ch. 18 - What mass of each of the following substances can...Ch. 18 - Aluminum is produced commercially by the...Ch. 18 - An unknown metal M is electrolyzed. 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