OWLv2 with Student Solutions Manual eBook for Masterton/Hurley's Chemistry: Principles and Reactions, 8th Edition, [Instant Access], 4 terms (24 months)
OWLv2 with Student Solutions Manual eBook for Masterton/Hurley's Chemistry: Principles and Reactions, 8th Edition, [Instant Access], 4 terms (24 months)
8th Edition
ISBN: 9781305863170
Author: William L. Masterton; Cecile N. Hurley
Publisher: Cengage Learning US
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Chapter 17, Problem 100QAP

Consider the following standard reduction potentials:
Tl + ( a q ) + e Tl ( s ) E red ° = 0.34 V Tl 3 + ( a q ) + 3 e Tl ( s ) E red ° = 0.74 V Tl 3 + ( a q ) + 2 e Tl + ( a q ) E red ° = 1.28 V
and the following abbreviated cell notations:
(1) Tl | Tl + Tl 3 + , Tl + | Pt
(2) Tl | Tl 3 + Tl 3 + , Tl + | Pt
(3) Tl | Tl + Tl 3 + | Tl
(a) Write the overall equation for each cell.
(b) Calculate E° for each cell.
(c) Calculate ΔG° for each overall equation.
(d) Comment on whether ΔG° and/or E° are state properties. (Hint: A state property is path-independent.)

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

The overall equation for each of the cells represented by the following notation needs to be deduced

(1) Tl | Tl+|| Tl3+, Tl+ | Pt  (2) Tl | Tl3+|| Tl3+, Tl+ | Pt(3) Tl | Tl+|| Tl3+, Tl        

Concept introduction:

Electrochemical cells are represented in a shorthand format via the cell notation method which depicts the anode half-cell on the left separated from the cathode half-cell on the right via a salt bridge (||). The chemical reactions that take place in an electrochemical cell are redox reactions i.e. oxidation (loss of electrons) at the anode and reduction (gain of electrons) at the cathode

Answer to Problem 100QAP

Overall equation for each cell: 2Tl(s) + Tl3+(aq)  3Tl+(aq) .

Explanation of Solution

  1. The given cell notation is:

Tl | Tl+|| Tl3+, Tl+ | Pt  

The half reactions are:

Anode (oxidation):     2Tl(s)  2Tl+(aq) + 2e-                    E0=0.34 VCathode (reduction): Tl3+(aq) + 2e- Tl+(aq)                    E0 = 1.28 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------

  1. The given cell notation is:

Tl | Tl3+|| Tl3+, Tl+ | Pt

The half reactions are:

Anode (oxidation):     2Tl(s)  2Tl3+(aq) + 6e-                       E0=0.74 VCathode (reduction): 3Tl3+(aq) + 6e- 3Tl+(aq)                    E0 = 1.28 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------

  1. The given cell notation is:

Tl | Tl+|| Tl3+, Tl

The half reactions are:

Anode (oxidation):     3Tl(s)  3Tl+(aq) + 3e-                       E0=0.34 VCathode (reduction): Tl3+(aq) + 3e- Tl(s)                           E0 = +0.74 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

The standard voltage (E°) for each of the three cells needs to be deduced

Concept introduction:

The standard voltage (E°) for the cell is the sum of the standard voltages of the reduction (Ered0) and oxidation (Eoxd0) potentials E0 = Ered0- Eoxd0(or) E0 = Ecathode0- Eanode0 ----------(1)

Answer to Problem 100QAP

(1) Tl | Tl+|| Tl3+, Tl+ | Pt  ----------E0=1.62 V(2) Tl | Tl3+|| Tl3+, Tl+ | Pt ----------E0=0.54 V(3) Tl | Tl+|| Tl3+, Tl          ----------E0=1.08 V

Explanation of Solution

  1. The given cell notation is:

Tl | Tl+|| Tl3+, Tl+ | Pt  

The half reactions are:

Anode (oxidation):     2Tl(s)  2Tl+(aq) + 2e-                    E0=0.34 VCathode (reduction): Tl3+(aq) + 2e- Tl+(aq)                    E0 = 1.28 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------E0 = Ecathode0- Eanode0 = 1.28 - (-0.34) = 1.62 V

2) The given cell notation is:

Tl | Tl3+|| Tl3+, Tl+ | Pt

The half reactions are:

Anode (oxidation):     2Tl(s)  2Tl3+(aq) + 6e-                       E0=0.74 VCathode (reduction): 3Tl3+(aq) + 6e- 3Tl+(aq)                    E0 = 1.28 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------E0 = Ecathode0- Eanode0 = 1.28 - (0.74) = 0.54 V

3) The given cell notation is:

Tl | Tl+|| Tl3+, Tl

The half reactions are:

Anode (oxidation):     3Tl(s)  3Tl+(aq) + 3e-                       E0=0.34 VCathode (reduction): Tl3+(aq) + 3e- Tl(s)                           E0 = +0.74 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------E0 = Ecathode0- Eanode0 = 0.74 - (-0.34) = 1.06 V

Expert Solution
Check Mark
Interpretation Introduction

(c)

Interpretation:

The standard free energy change (ΔG°) for each of the three cells needs to be deduced

Concept introduction:

The change in the Gibbs free energy, ΔG is a thermodynamic function which governs the spontaneity of a chemical reaction. If ΔG is negative the reaction is spontaneous, positive value indicated that the reaction is non-spontaneous and if ΔG = 0, then the reaction is said to be at equilibrium

The standard Gibbs free energy change (ΔG°) is related to the standard voltage (E°) by the equation:

ΔG0 = -nFE0 -------(2)where n = number of electrons, F = Faraday constant (96500 C)

Answer to Problem 100QAP

The standard free energy change for all three cells is: ΔG° = -312.66 kJ

Explanation of Solution

  1. The given cell notation is:

Tl | Tl+|| Tl3+, Tl+ | Pt  

The half reactions are:

Anode (oxidation):     2Tl(s)  2Tl+(aq) + 2e-                    E0=0.34 VCathode (reduction): Tl3+(aq) + 2e- Tl+(aq)                    E0 = 1.28 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------E0 = Ecathode0- Eanode0 = 1.28 - (-0.34) = 1.62 VΔG0 = -nFE0=2(96500)(1.62)=312.66 kJ

2) The given cell notation is:

Tl | Tl3+|| Tl3+, Tl+ | Pt

The half reactions are:

Anode (oxidation):     2Tl(s)  2Tl3+(aq) + 6e-                       E0=0.74 VCathode (reduction): 3Tl3+(aq) + 6e- 3Tl+(aq)                    E0 = 1.28 V  ---------------------------------------------------------------                          

Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------E0 = Ecathode0- Eanode0 = 1.28 - (0.74) = 0.54 VΔG0 = -nFE0=6(96500)(0.54)=312.66 kJ

3) The given cell notation is:

Tl | Tl+|| Tl3+, Tl

The half reactions are:

Anode (oxidation):     3Tl(s)  3Tl+(aq) + 3e-                       E0=0.34 VCathode (reduction): Tl3+(aq) + 3e- Tl(s)                           E0 = +0.74 V  ---------------------------------------------------------------                          Overall Reaction:       2Tl(s) + Tl3+(aq)  3Tl+(aq) ------------------------------------------------------------------E0 = Ecathode0- Eanode0 = 0.74 - (-0.34) = 1.08 VΔG0 = -nFE0=3(96500)(1.08)=312.66 kJ

Expert Solution
Check Mark
Interpretation Introduction

(d)

Interpretation:

An explanation needs to be provided substantiating whether ΔG° and ?E° are state properties

Concept introduction:

In thermodynamics, a ‘state property/function’ is a quantity which is independent of the path taken in order to reach the final value. In contrast, a ‘path property/function’ depends on the path taken to reach the final state.

Answer to Problem 100QAP

ΔG°: State property

E° : Path property

Explanation of Solution

For the given three cells, the ΔG° remains unchanged at -316.22 kJ. However, the standard voltage (E°) is different for each cell. Hence, ΔG° is a state property whereas; E° is a path property.

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Chapter 17 Solutions

OWLv2 with Student Solutions Manual eBook for Masterton/Hurley's Chemistry: Principles and Reactions, 8th Edition, [Instant Access], 4 terms (24 months)

Ch. 17 - Write a balanced chemical equation for the overall...Ch. 17 - Write a balanced net ionic equation for the...Ch. 17 - Draw a diagram for a salt bridge cell for each of...Ch. 17 - Follow the directions in Question 13 for the...Ch. 17 - Consider a voltaic salt bridge cell represented by...Ch. 17 - Consider a salt bridge voltaic cell represented by...Ch. 17 - Consider a salt bridge cell in which the anode is...Ch. 17 - Follow the directions in Question 17 for a salt...Ch. 17 - Prob. 19QAPCh. 17 - Which species in each pair is the stronger...Ch. 17 - Using Table 17.1, arrange the following reducing...Ch. 17 - Use Table 17.1 to arrange the following oxidizing...Ch. 17 - Consider the following species. 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Fill...Ch. 17 - Consider a cell reaction at 25°C where n=4 . Fill...Ch. 17 - For a certain cell, G=25.0 kJ. Calculate E° if n...Ch. 17 - For a certain cell, E=1.08 V. Calculate G° if n is...Ch. 17 - Calculate E°, G°, and K at 25°C for the reaction...Ch. 17 - Calculate E°, G°, and K at 25°C for the reaction...Ch. 17 - Calculate G° at 25°C for each of the reactions...Ch. 17 - Calculate G° at 25°C for each of the reactions...Ch. 17 - Calculate K at 25°C for each of the reactions...Ch. 17 - Calculate K at 25°C for each of the reactions...Ch. 17 - Prob. 59QAPCh. 17 - Use Table 17.1 to find Kffor AuCl4- (aq) at 25°C.Ch. 17 - Prob. 61QAPCh. 17 - What is E° at 25°C for the following reaction?...Ch. 17 - Consider a voltaic cell at 25°C in which the...Ch. 17 - Consider a voltaic cell at 25°C in which the...Ch. 17 - Consider a voltaic cell in which the following...Ch. 17 - Consider a voltaic cell in which the following...Ch. 17 - Calculate the voltages of the following cells at...Ch. 17 - Calculate the voltages of the following cells at...Ch. 17 - Consider the reaction...Ch. 17 - Consider the reaction at 25°C:...Ch. 17 - Complete the following cell notation....Ch. 17 - Complete the following cell notation....Ch. 17 - Consider the reaction below at 25°C:...Ch. 17 - Consider the reaction low at 25°C:...Ch. 17 - Consider a cell in which the reaction is...Ch. 17 - Consider a cell in which the reaction is...Ch. 17 - An electrolytic cell produces aluminum from Al2O3...Ch. 17 - Prob. 78QAPCh. 17 - A solution containing a metal ion (M2+(aq)) is...Ch. 17 - A solution containing a metal ion (M2+(aq)) is...Ch. 17 - A baby's spoon with an area of 6.25 cm2 is plated...Ch. 17 - A metallurgist wants to gold-plate an object with...Ch. 17 - A lead storage battery delivers a current of 6.00...Ch. 17 - Calcium metal can be obtained by the direct...Ch. 17 - Given the following data:...Ch. 17 - In a nickel-cadmium battery (Nicad), cadmium is...Ch. 17 - Hydrogen gas is produced when water is...Ch. 17 - Consider the electrolysis of NiCl2 to Ni(s) and...Ch. 17 - An electrolysis experiment is performed to...Ch. 17 - Prob. 90QAPCh. 17 - Prob. 91QAPCh. 17 - Prob. 92QAPCh. 17 - Atomic masses can be determined by electrolysis....Ch. 17 - Consider the following reaction at 25°C:...Ch. 17 - Given the standard reduction potential for...Ch. 17 - Choose the figure that best represents the results...Ch. 17 - For the cell: Cr|Cr3+Co2+|Co E° is 0.46 V. The...Ch. 17 - Which of the changes below will increase the...Ch. 17 - The standard potential for the reduction of AgSCN...Ch. 17 - Consider the following standard reduction...Ch. 17 - Use Table 17.1 to answer the following questions....Ch. 17 - Consider three metals, X, Y, and Z, and their...Ch. 17 - An alloy made up of tin and copper is prepared by...Ch. 17 - In a fully charged lead storage battery, the...Ch. 17 - Consider a voltaic cell in which the following...Ch. 17 - In biological systems, acetate ion is converted to...Ch. 17 - Consider the cell Pt|H2|H+H+|H2|Pt In the anode...Ch. 17 - Prob. 108QAPCh. 17 - Prob. 109QAP
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