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 20, Problem 45QAP
Interpretation Introduction

Interpretation:

The balanced net ionic equation has to be written for all the reactions for the given situation.

Concept introduction:

While writing the net ionic equation, an understanding of spectator ions is very important. The spectator ions are the ions which are found in same form in both the reactant and product sides. So, while writing the net ionic equation, these ions are not involved or simply not counted.

Expert Solution & Answer
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Answer to Problem 45QAP

The net ionic equations are:

Cr2O72(aq)+2OH(aq)2CrO42(aq)+H2O(l)

Cr2O42(aq)+2Ag+(aq)Ag2CrO4(s)

Ag2CrO4(s)+4NH3(aq)2Ag(NH3)2+(aq)+Cr2O42(aq)

2Ag(NH3)2+(aq)+Cr2O42(aq)+4H+(aq)Ag2CrO4(s)+4NH4+(aq)

Explanation of Solution

Given Information:

    (1) A solution of potassium dichromate is made basic with sodium hydroxide. The color changes from red to yellow.

    (2) The addition of silver nitrate to the yellow solution gives the precipitate.

    (3) The precipitate dissolves in concentrated ammonia.

    (4) The dissolved precipitate again reforms when nitric acid is added.

From the given details, we can infer that four independent reactions will take place. The balanced net ionic equation will be written for each step of procedure separately.

Step1: A solution of potassium dichromate is made basic with sodium hydroxide.

The color changes from red to yellow.

K2Cr2O7(aq)+2NaOH(aq)K2CrO4(aq)+Na2CrO4(aq)+H2O(l)

The ionic reaction form will be:

2K+(aq)+Cr2O72(aq)+2Na+(aq)+2OH(aq)2K+(aq)+CrO42(aq)+2Na+(aq)+CrO42(aq)+H2O(l) Here, the Na+ and K+ are spectator ions and removing them will give the balanced net ionic equation as:

Cr2O72(aq)+2OH(aq)2CrO42(aq)+H2O(l)

Step 2: The solution is added with AgNO3 :

Cr2O42(aq)+2Ag+(aq)+2NO3(aq)+2H+Ag2CrO4(s)+HNO3(aq)

The spectator ions H+and NO3- are removed.

Net ionic equation is:

Cr2O42(aq)+2Ag+(aq)Ag2CrO4(s)

Step3: The precipitate is dissolved in concentrated ammonia.

Ag2CrO4(s)+4NH3(aq)2Ag(NH3)2+(aq)+Cr2O42(aq)

The reaction is automatically in its net ionic form.

Step 4: The dissolved precipitate again reforms when nitric acid is added.

2Ag(NH3)2+(aq)+Cr2O42(aq)+4NO3(aq)+4H+(aq)Ag2CrO4(s)+4NH4+(aq)+4NO3(aq)

Here, the spectator ion is NO3- which is removed to give the net ionic reaction as:

2Ag(NH3)2+(aq)+Cr2O42(aq)+4H+(aq)Ag2CrO4(s)+4NH4+(aq)

Conclusion

The net ionic equations are:

Cr2O72(aq)+2OH(aq)2CrO42(aq)+H2O(l)

Cr2O42(aq)+2Ag+(aq)Ag2CrO4(s)

Ag2CrO4(s)+4NH3(aq)2Ag(NH3)2+(aq)+Cr2O42(aq)

2Ag(NH3)2+(aq)+Cr2O42(aq)+4H+(aq)Ag2CrO4(s)+4NH4+(aq)

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Chapter 20 Solutions

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

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