INTRODUCTORY CHEMISTRY
INTRODUCTORY CHEMISTRY
9th Edition
ISBN: 9780357858998
Author: ZUMDAHL
Publisher: CENGAGE C
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Chapter 17, Problem 15CR
Interpretation Introduction

Interpretation:

The reason as to why dissolving a slightly soluble salt to form a saturated solution is an equilibrium process is to be explained. Three balanced chemical equations for solubility processes and the expressions for Ksp of the chosen reactions are to be stated. The reason as to why the concentration of the sparingly soluble salt itself is not included in the expression is to be explained. The calculation of molar solubility and the solubility in g/L, for a given value of solubility product, is to be explained.

Concept Introduction:

The equilibrium state of a chemical reaction is the state at which the rate of reaction going into the forward direction becomes equal to the rate of reaction going into the backward direction. A general equilibrium reaction is represented as,

AB+C.

Expert Solution & Answer
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Answer to Problem 15CR

When a slightly soluble salt is dissolved to form a saturated solution, the amount of salt dissociating in aqueous medium becomes equal to the amount of salt ions associating to form solid salts. The rate of forward process become equal to rate of backward process therefore, this process is an equilibrium process.

The balanced chemical equation for solubility process of PbCl2 is represented as,

PbCl2sPb2+aq+2Claq

The expression for solubility product of the above equation is given as,

Ksp=Pb2+Cl2

The balanced chemical equation for solubility process of Ag2CrO4 is represented as,

Ag2CrO4s2Ag+aq+CrO42aq

The expression for solubility product of the above equation is given as,

Ksp=Ag+2CrO42

The balanced chemical equation for solubility process of CaF2 is represented as,

CaF2sCa2+aq+2Faq

The expression for solubility product of the above equation is given as,

Ksp=Ca2+F2

The concentration of the sparingly soluble salt itself is not included in the expression because the salt is present in the solid state and its concentration is taken as unity.

The molar solubility of salt can be can be calculated as,

x=Kspm+n1m+n

Where,

  • Ksp represents the solubility product of the salt.
  • m represents the stoichiometric coefficient of anion.
  • n represents the stoichiometric coefficient of cation.

The solubility in g/L can be calculated by multiplying the molar mass of the ions with molar solubility.

Explanation of Solution

When a slightly soluble salt is dissolved to form a saturated solution, initially the salt starts dissolving into the solution till a particular point. After saturation point of the solution is reached the ions starts colliding to form solid salt. The amount of salt dissociating in aqueous medium becomes equal to the amount of salt ion associating to form solid salts. The rate of forward process become equal to rate of backward process therefore, this process is an equilibrium process. The general equilibrium reaction for dissolution of a salt in aqueous medium is represented as,

ABsA+aq+Baq

The balanced chemical equation for solubility process of PbCl2 is represented as,

PbCl2sPb2+aq+2Claq

The expression for solubility product of the above equation is given as,

Ksp=Pb2+Cl2

The balanced chemical equation for solubility process of Ag2CrO4 is represented as,

Ag2CrO4s2Ag+aq+CrO42aq

The expression for solubility product of the above equation is given as,

Ksp=Ag+2CrO42

The balanced chemical equation for solubility process of CaF2 is represented as,

CaF2sCa2+aq+2Faq

The expression for solubility product of the above equation is given as,

Ksp=Ca2+F2

The concentration of the sparingly soluble salt is itself not included in the expression because the salt is present in the solid state and its concentration is taken as unity.

The chemical equation for solubility process of a salt is given as,

AnBmsnAm+aq+mBnaq

The molar solubility of salt can be can be calculated as,

x=Kspm+n1m+n

Where,

  • Ksp represents the solubility product of the salt.
  • m represents the stoichiometric coefficient of anion.
  • n represents the stoichiometric coefficient of cation.

The solubility in g/L can be calculated by multiplying the molar mass of the ion with molar solubility.

Conclusion

When a slightly soluble salt is dissolved to form a saturated solution, the amount of salt dissociating in aqueous medium becomes equal to the amount of salt ion associating to form solid salts. The rate of forward process become equal to rate of backward process therefore, this process is an equilibrium process.

The balanced chemical equation for solubility process of PbCl2 is represented as,

PbCl2sPb2+aq+2Claq

The expression for solubility product of the above equation is given as,

Ksp=Pb2+Cl2

The balanced chemical equation for solubility process of Ag2CrO4 is represented as,

Ag2CrO4s2Ag+aq+CrO42aq

The expression for solubility product of the above equation is given as,

Ksp=Ag+2CrO42

The balanced chemical equation for solubility process of CaF2 is represented as,

CaF2sCa2+aq+2Faq

The expression for solubility product of the above equation is given as,

Ksp=Ca2+F2

The concentration of the sparingly soluble salt is itself not included in the expression because the salt is present in the solid state and its concentration is taken as unity.

The molar solubility of salt can be can be calculated as,

x=Kspm+n1m+n

Where,

  • Ksp represents the solubility product of the salt.
  • m represents the stoichiometric coefficient of anion.
  • n represents the stoichiometric coefficient of cation.

The solubility in g/L can be calculated by multiplying the molar mass of the ion with molar solubility.

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Chapter 17 Solutions

INTRODUCTORY CHEMISTRY

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 - . 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