Introduction to
Electrochemical Science and
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Engineering 2nd Edition
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SOLUTIONS
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MANUAL
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Serguei N. Lvov
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Comprehensive Solutions Manual for
Instructors and Students
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© Serguei N. Lvov. All rights reserved. Reproduction or distribution without permission is
prohibited.
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9781032073002
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Solutions Manual — Introduction to Electrochemical Science and
Engineering, 2nd Edition — Serguei N. Lvov
Description
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This solutions manual corresponds to the 2nd edition of Introduction
to Electrochemical Science and Engineering by Serguei N. Lvov. It
follows the official textbook structure and provides detailed, step-by-
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step solutions to conceptual and numerical problems across the full
scope of electrochemical science and engineering, supporting mastery
of theory, calculations, and practical applications.
Table of Contents
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Chapter 1: Electrolyte Solutions
Chapter 2: Electrochemical Cells
Chapter 3: Electric Conductivity
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Chapter 4: Equilibrium Electrochemistry
Chapter 5: Electrochemical Techniques I
Chapter 6: Electrochemical Kinetics
Chapter 7: Electrochemical Techniques II
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Chapter 8: Electrochemical Energy Conversion
Chapter 9: Electrochemical Corrosion
Chapter 10: Data Section
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Solutions Manual for Introduction to Electrochemical Science
and Engineering, 2e by Serguei Lvov (All Chapters)
Keys for Questions and Solutions of Numerical Problems
Appendix A
Quiz 1
1. The absolute value of the chemical potential
(a) is known
(b) is approximately known
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(c) is not known
2. In practical calculations, instead of the standard chemical potential, we should use
(a) standard entropy
(b) standard Gibbs energy of formation
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(c) standard enthalpy of formation
3. The chemical potential
(a) depends on the concentration scale
(b) does not depend on the concentration scale
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(c) slightly depends on the concentration scale
4. The activity coefficient
(a) depends on the concentration scale
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(b) does not depend on the concentration scale
(c) none of these
5. The standard chemical potential
(a) depends on the concentration scale
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(b) does not depend on the concentration scale
(c) none of these
6. The chemical potential depends on
(a) concentration only
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(b) temperature and pressure only
(c) concentration, temperature and pressure
7. In aqueous electrolyte solutions, the standard chemical potential of water is defined when
(a) mole fraction of water ® 0
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(b) mole fraction of electrolyte ® 1
(c) mole fraction of water ® 1
8. In aqueous solutions, the standard chemical potential of electrolyte is defined when
(a) molality of the electrolyte ® 0
(b) molality of the electrolyte ® 1
(c) mole fraction of water ® 0
9. Activity of a component in aqueous solution
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(a) is dimensionless
(b) has dimension of molality
(c) has dimension of molarity
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10. If molality of CuSO4(aq) is 0.005 mol/kg, the dimensionless ionic strength of the solution, I,
is
(a) 0.005
(b) 0.01
(c) 0.02
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11. The ionic strength, Ib, of an aqueous solution which consists of 0.01 mol/kg of HCl and 0.02
mol/kg of CaCl2 is
(a) 0.06 mol/kg
(b) 0.07 mol/kg
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(c) 0.08 mol/kg
12. The dissociation constant of the acetic acid can be found in Chapter 10: Data Section.
Calculate the pH of 0.02 mol/kg CH3COOH(aq) solution assuming the activity coefficients
of ions equal 1.
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(a) pH=1.23
(b) pH=2.23
(c) pH=3.23
13. For a CaCl2(aq) solution, if the individual ion activity coefficients are equal, then
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(a) γ+ = γ±
(b) γ- = γ±
(c) both of these
14. The difference between experimental (Chapter 10: Data Section) and calculated (using
Debye-Huckel limiting law) mean activity coefficient of 0.01 mol/kg NaCl(aq) is about
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(a) 0.136
(b) 0.0136
(c) 0.00136
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