OWLV2 FOR MOORE/STANITSKI'S CHEMISTRY:
OWLV2 FOR MOORE/STANITSKI'S CHEMISTRY:
5th Edition
ISBN: 9781285460369
Author: STANITSKI
Publisher: Cengage Learning
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Chapter 15, Problem 70QRT

(a)

Interpretation Introduction

Interpretation:

The solubility of ZnCO3 has to be calculated in water.

Concept Introduction:

Solubility product relates the solubility of a salt with the concentration of ions present in the salt.  Solubility product holds a direct relation with the solubility of the salt.  The solubility product is the ability of the solid to dissolve in aqueous solution.  The more the solubility product the more the solid dissolves in solution. It is denoted as Ksp.  It is known as solubility product constant.

(a)

Expert Solution
Check Mark

Answer to Problem 70QRT

The solubility of ZnCO3 in water is 3.74×106M_.

Explanation of Solution

The dissociation reaction of ZnCO3 is shown below.

  ZnCO3(s)Zn2+(aq)+CO32(aq)

The Ksp for ZnCO3 is given as 1.4×1011.

The expression of molar solubility of ZnCO3 in pure water is as follows.

    Ksp=[Zn2+][CO32]=(S)(S)=S2                                                                                    ……(1)

Where,

  • Ksp is the solubility product.
  • S is the solubility.

Substitute Ksp of ZnCO3 in the equation (1).

    Ksp=S21.4×1011=S2S=1.4×1011=3.74×106M_

(b)

Interpretation Introduction

Interpretation:

The solubility of ZnCO3 has to be calculated in 0.050MZn(NO3)2.

Concept Introduction:

Refer to concept of part (a).

(b)

Expert Solution
Check Mark

Answer to Problem 70QRT

The solubility of ZnCO3 in 0.050MZn(NO3)2 is 2.8×1010M_.

Explanation of Solution

The concentration of Zn(NO3)2 solution in which ZnCO3 is present is 0.050M.

The dissociation reaction of Zn(NO3)2 is as follows.

    Zn(NO3)2(aq)Zn2+(aq)+2NO3(aq)

This means one mole of Zn(NO3)2 gives one moles of Zn2+.  Therefore, the concentration of Zn2+ ions already present in 0.050M Zn(NO3)2 is 0.050M.

The ICE table for the dissociation of ZnCO3 in 0.050M Zn(NO3)2 is as follows.

         ZnCO3(s)Zn2+(aq)+CO32(aq)I                 0.050M   0C           SS     E             0.050M+S  S

Where,

  • S is the solubility.
  • I is the Initial concentration.
  • C is the change in concentration.
  • E is the equilibrium concentration.

The expression of molar solubility of ZnCO3 in 0.050M Zn(NO3)2 is as follows.

    Ksp=[Zn2+][CO32]=(0.050M+S)(S)

Where,

  • Ksp is the solubility product.
  • S is the solubility.

The value of (0.050M+S) is approximately equal to the 0.050M as the value of S is very small as compared to 0.050M.

So, the expression of molar solubility of ZnCO3 in 0.050M Zn(NO3)2 is written as shown below.

    Ksp=(0.050M)(S)

Substitute Ksp of ZnCO3 in the above equation.

  Ksp=(0.050M)(S)1.4×1011=(0.050M)(S)S=1.4×10110.050M=2.8×1010M_

(c)

Interpretation Introduction

Interpretation:

The solubility of ZnCO3 has to be calculated in 0.050MK2CO3.

Concept Introduction:

Refer to concept of part (a).

(c)

Expert Solution
Check Mark

Answer to Problem 70QRT

The solubility of ZnCO3 in 0.050MK2CO3 is 2.8×1010M_.

Explanation of Solution

The concentration of K2CO3 solution in which ZnCO3 is present is 0.050M.

The dissociation reaction of K2CO3 is as follows.

    K2CO3(aq)2K+(aq)+CO32(aq)

This means one mole of K2CO3 gives one moles of CO32.  Therefore, the concentration of CO32 ions already present in 0.050M K2CO3 is 0.050M.

The ICE table for the dissociation of ZnCO3 in 0.050M K2CO3 is as follows.

         ZnCO3(s)Zn2+(aq)+CO32(aq)I                  00.050MC           SS     E              S0.050M+S

Where,

  • S is the solubility.
  • I is the Initial concentration.
  • C is the change in concentration.
  • E is the equilibrium concentration.

The expression of molar solubility of ZnCO3 in 0.050M K2CO3 is as follows.

    Ksp=[Zn2+][CO32]=(S)(0.050M+S)

Where,

  • Ksp is the solubility product.
  • S is the solubility.

The value of (0.050M+S) is approximately equal to the 0.050M as the value of S is very small as compared to 0.050M.

So, the expression of molar solubility of ZnCO3 in 0.050M K2CO3 is written as shown below.

    Ksp=(0.050M)(S)

Substitute Ksp of ZnCO3 in the above equation.

  Ksp=(0.050M)(S)1.4×1011=(0.050M)(S)S=1.4×10110.050M=2.8×1010M_

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Chapter 15 Solutions

OWLV2 FOR MOORE/STANITSKI'S CHEMISTRY:

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