Bundle: Introductory Chemistry: A Foundation, 8th + OWLv2 6-Months Printed Access Card
Bundle: Introductory Chemistry: A Foundation, 8th + OWLv2 6-Months Printed Access Card
8th Edition
ISBN: 9781305367333
Author: Steven S. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
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Chapter 17, Problem 57QAP

. Write the balanced chemical equation describing the dissolving of each of the following sparingly soluble salts in water. Write the expression for K for each process.

a. AgIO3(s)

c. Zn3(PO4)2(s)

b. Sn(OH)2(s)

d. BaF2(s)

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

The balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water are to be stated.

Concept Introduction:

The chemical equilibrium is the state in which the rates of both forward and backward reactions become equal. The concentration of both reactants and products do not change on reaching an equilibrium state.

The general chemical equation is shown below.

aA+bBcC+dD

The general equilibrium expression for a reaction is shown below.

K=[C]c[D]d[A]a[B]b.

Answer to Problem 57QAP

The balanced chemical equation describing dissolution of AgIO3(s) in water along with its expression for Ksp is,

AgIO3(s)Ag+(aq)+IO3(aq).

Explanation of Solution

The given sparingly soluble salt is AgIO3(s).

The balanced chemical equation of AgIO3(s) that describes its dissolution in water is shown below.

AgIO3(s)Ag+(aq)+IO3(aq)

The expression of Ksp for the above chemical equation is shown below.

Ksp=[Ag+][IO3].

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

The balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water are to be stated.

Concept Introduction:

The chemical equilibrium is the state in which the rates of both forward and backward reactions become equal. The concentration of both reactants and products do not change on reaching an equilibrium state.

The general chemical equation is shown below.

aA+bBcC+dD

The general equilibrium expression for a reaction is shown below.

K=[C]c[D]d[A]a[B]b.

Answer to Problem 57QAP

The balanced chemical equation describing the dissolution of Sn(OH)2(s) in water along with its expression for Ksp is,

Sn(OH)2(s)Sn2+(aq)+2OH(aq).

Explanation of Solution

The given sparingly soluble salt is Sn(OH)2(s).

The balanced chemical equation of Sn(OH)2(s) that describes its dissolution in water is shown below.

Sn(OH)2(s)Sn2+(aq)+2OH(aq)

The expression of Ksp for the above chemical equation is shown below.

Ksp=[Sn2+][OH]2

Therefore, the balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water have been rightfully stated.

Expert Solution
Check Mark
Interpretation Introduction

(c)

Interpretation:

The balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water are to be stated.

Concept Introduction:

The chemical equilibrium is the state in which the rates of both forward and backward reactions become equal. The concentration of both reactants and products do not change on reaching an equilibrium state.

The general chemical equation is shown below.

aA+bBcC+dD

The general equilibrium expression for a reaction is shown below.

K=[C]c[D]d[A]a[B]b.

Answer to Problem 57QAP

The balanced chemical equation describing dissolution of Zn3(PO4)2(s) in water along with its expression for Ksp is,

Sn(OH)2(s)Sn2+(aq)+2OH(aq).

Explanation of Solution

The given sparingly soluble salt is Zn3(PO4)2(s).

The balanced chemical equation of Zn3(PO4)2(s) that describes its dissolution in water is shown below.

Zn3(PO4)2(s)3Zn2+(aq)+2PO43(aq)

The expression of Ksp for the above chemical equation is shown below.

Ksp=[Zn2+]3[PO43]2

Therefore, the balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water have been rightfully stated.

Expert Solution
Check Mark
Interpretation Introduction

(d)

Interpretation:

The balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water are to be stated.

Concept Introduction:

The chemical equilibrium is the state in which the rates of both forward and backward reactions become equal. The concentration of both reactants and products do not change on reaching an equilibrium state.

The general chemical equation is shown below.

aA+bBcC+dD

The general equilibrium expression for a reaction is shown below.

K=[C]c[D]d[A]a[B]b.

Answer to Problem 57QAP

The balanced chemical equation describing dissolution of BaF2(s) in water along with its expression for Ksp is,

BaF2(s)Ba2+(aq)+2F(aq).

Explanation of Solution

The given sparingly soluble salt is BaF2(s).

The balanced chemical equation of BaF2(s) that describes its dissolution in water is shown below.

BaF2(s)Ba2+(aq)+2F(aq)

The expression of Ksp for the above chemical equation is shown below.

Ksp=[Ba2+][F]2

Therefore, the balanced chemical equation along with its expression for Ksp which describes the dissolving of the given sparingly soluble salts in water have been rightfully stated.

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Chapter 17 Solutions

Bundle: Introductory Chemistry: A Foundation, 8th + OWLv2 6-Months Printed Access Card

Ch. 17 - Consider an equilibrium mixture of four chemicals...Ch. 17 - The boxes shown below represent a set of initial...Ch. 17 - For the reaction H2+I22HI, consider two...Ch. 17 - Given the reaction A+BC+D, consider the following...Ch. 17 - Consider the reaction A+BC+D. A friend asks the...Ch. 17 - Prob. 6ALQCh. 17 - The value of the equilibrium constant, K, is...Ch. 17 - You are browsing through the Handbook of...Ch. 17 - What do you suppose happens to the Ksp, value of a...Ch. 17 - . Consider an equilibrium mixture consisting of...Ch. 17 - . Equilibrium is microscopically dynamic but...Ch. 17 - In Section 17.3 of your text, it is mentioned that...Ch. 17 - Prob. 13ALQCh. 17 - . Consider the figure below in answering the...Ch. 17 - For a chemical reaction to take place, some or all...Ch. 17 - For the simple reaction 2H2(g)+O2(g)2H2O(l)list...Ch. 17 - How do chemists envision reactions taking place in...Ch. 17 - When molecules collide, a certain minimum energy...Ch. 17 - How does a catalyst work to speed up a chemical...Ch. 17 - Why are enzymes important? For example, what is...Ch. 17 - How does equilibrium represent the balancing of...Ch. 17 - Consider the equilibrium process depicted in Fig....Ch. 17 - When writing a chemical equation for a reaction...Ch. 17 - . How do chemists recognize a system that has...Ch. 17 - . What does it mean to say that a state of...Ch. 17 - . Consider an initial mixture of N2 and H2 gases...Ch. 17 - . In general terms. what does the equilibrium...Ch. 17 - . There is only one value of the equilibrium...Ch. 17 - . Write the equilibrium expression for each of the...Ch. 17 - . Write the equilibrium expression for each of the...Ch. 17 - . Write the equilibrium expression for each of the...Ch. 17 - . Write the equilibrium expression for each of the...Ch. 17 - . Suppose that for the reaction...Ch. 17 - Prob. 20QAPCh. 17 - . At high temperatures, elemental nitrogen and...Ch. 17 - . Suppose that for the reaction...Ch. 17 - . What is a homogeneous equilibrium system? Give...Ch. 17 - Prob. 24QAPCh. 17 - . Write the equilibrium expression for each of the...Ch. 17 - . Write the equilibrium expression for each of the...Ch. 17 - . Write the equilibrium expression for each of the...Ch. 17 - Prob. 28QAPCh. 17 - . In your own words, describe what Le Châtelier’s...Ch. 17 - . Consider the reaction 2CO(g)+O2(g)2CO2(g)Suppose...Ch. 17 - . For an equilibrium involving gaseous substances,...Ch. 17 - . What is the effect on the equilibrium position...Ch. 17 - . For the reaction system...Ch. 17 - Prob. 34QAPCh. 17 - . Suppose the reaction system...Ch. 17 - . Consider the general reaction...Ch. 17 - . Hydrogen gas and chlorine gas in the presence of...Ch. 17 - . Hydrogen gas, oxygen gas, and water vapor are in...Ch. 17 - . The reaction C2H2(g)+2Br2(g)C2H2Br4(g)is...Ch. 17 - . Old fashioned “smelling salts” consist of...Ch. 17 - . Plants synthesize the sugar dextrose according...Ch. 17 - . Consider the exothermic reaction...Ch. 17 - . Suppose are action has the equilibrium constant...Ch. 17 - . Suppose a reaction has the equilibrium constant...Ch. 17 - . For the reaction Br2(g)+5F2(g)2BrF5(g)the system...Ch. 17 - . Consider the reaction...Ch. 17 - . For the reaction 2CO(g)+O2(g)2CO2(g)it is found...Ch. 17 - . For the reaction CO2(g)+H2(g)CO(g)+H2O(g)the...Ch. 17 - . The equilibrium constant for the reaction...Ch. 17 - . For the reaction 2H2O(g)2H2(g)+O2(g)K=2.4103at a...Ch. 17 - . For the reaction 3O2(g)2O3(g)The equilibrium...Ch. 17 - . For the reaction N2O4(g)2NO(g)the equilibrium...Ch. 17 - . 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