EBK CHEMISTRY: PRINCIPLES AND REACTIONS
EBK CHEMISTRY: PRINCIPLES AND REACTIONS
8th Edition
ISBN: 8220100547966
Author: Hurley
Publisher: CENGAGE L
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Chapter 21, Problem 18QAP

Write a balanced net ionic equation for the disproportionation reaction of
(a) hypochlorous acid to chlorine gas and chlorous acid in acidic solution.
(b) chlorate ion to perchlorate and chlorite ions.

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

The net ionic equation (balanced)for the following should be determined:

disproportionation reaction of hypochlorous acid to chlorine gas and chlorous acid in acidic solution

Concept introduction:

Net ionic equation is the ionic equation in which reactants are written in ionic form if they occur as ions in a reaction medium and product form are shown as combination of ions. The charges of ions and each atom in the reaction are balanced.

Answer to Problem 18QAP

Balanced net ionic equation for the disproportionation reaction of hypochlorous acidto chlorine gas and chlorous acid in acidic solution is,

3HClO(aq)Cl2(g)+H2O(l)+HClO2(g)

Explanation of Solution

The equation of hypochlorous acid changes to chlorine gas is,

HClO(aq)Cl2(g)

Balance the above reaction.

  1. Balance all atoms except O(Oxygen) and H(Hydrogen)
  2. 2HClO(aq)Cl2(g)

  3. Balance oxygen by adding water.
  4. 2HClO(aq)Cl2(g)+2H2O(l)

  5. Balance H by adding H+ ion.
  6. 2HClO(aq)+2H+(aq)Cl2(g)+2H2O(l)

  7. Balance charges by adding electrons.
  8. 2HClO(aq)+2H+(aq)+2eCl2(g)+2H2O(l)

  9. Write in ionic form.

2H+(aq)+2HClO(aq)+2eCl2(g)+2H2O(l) - (1)

The equation of hypochlorous acid changes to chlorous acid.

HClO(aq)HClO2(aq)

Balance the above reaction.

  1. Balance all atoms except O(Oxygen) and H(Hydrogen)
  2. HClO(aq)HClO2(aq)

  3. Balance oxygen by adding water.
  4. HClO(aq)+H2O(l)HClO2(aq)

  5. Balance H by adding H+ ion.
  6. HClO(aq)+H2O(l)HClO2(aq)+2H+(aq)

  7. Balance charges by adding electrons.

HClO(aq)+H2O(l)HClO2(aq)+2H+(aq)+2e -(2)

Hence, net ionic equation is summation of equation (1) and (2).

2H+(aq)+2HClO(aq)+2eCl2(g)+2H2O(l)HClO(aq)+H2O(l)HClO2(aq)+2H+(aq)+2e

3HClO(aq)Cl2(g)+H2O(l)+HClO2(g)

So, the balanced net ionic equation is:

3HClO(aq)Cl2(g)+H2O(l)+HClO2(g)

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

The balanced net ionic equation for the following reaction should be determined:

disproportionation reaction of chlorate ion to perchlorate and chlorite ions.

Concept introduction:

Net ionic equation is the ionic equation in which reactants are written in ionic form if they occur as ions in a reaction medium and product form are shown as combination of ions. The charges of ions and each atom in the reaction are balanced.

Answer to Problem 18QAP

Balanced net ionic equation for the disproportionation reaction of chlorate ion to perchlorate and chlorite ions is,

2ClO3(aq)ClO4(aq)+ClO2(aq)

Explanation of Solution

Chlorate ion coverts to perchlorate ions.

ClO3Chlorateion(aq)ClO4Perchlorate(aq)

Balance the above reaction.

  1. Balance all atoms except O(Oxygen) and H(Hydrogen)
  2. ClO3(aq)ClO4(aq)

  3. Balance oxygen by adding water.
  4. ClO3(aq)+H2O(l)ClO4(aq)

  5. Balance H by adding H+ ion.

ClO3(aq)+H2O(l)ClO4(aq)+2H+(aq)

Hence, ionic form of reaction is,

ClO3(aq)+H2O(l)ClO4(aq)+2H+(aq) …… (3)

The equation of conversion of chlorate ion to chlorite ion is,

ClO3Chlorateion(aq)ClO2Chlorite(aq)

Balance the above reaction.

  1. Balance all atoms except O(Oxygen) and H(Hydrogen)
  2. ClO3(aq)ClO2(aq)

  3. Balance oxygen by adding water.
  4. ClO3(aq)ClO2(aq)+H2O(l)

  5. Balance H by adding H+ ion.

ClO3(aq)+2H+(aq)ClO2(aq)+H2O(l)

Hence, ionic form of reaction is,

ClO3(aq)+2H+(aq)ClO2(aq)+H2O(l) …… (4)

Hence, net ionic equation is summation of equation (3) and (4).

ClO3(aq)+H2O(l)ClO4(aq)+2H+(aq)ClO3(aq)+2H+(aq)ClO2(aq)+H2O(l)

2ClO3(aq)ClO4(aq)+ClO2(aq)

Hence, net ionic equation is,

2ClO3(aq)ClO4(aq)+ClO2(aq)

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Chapter 21 Solutions

EBK CHEMISTRY: PRINCIPLES AND REACTIONS

Ch. 21 - Prob. 11QAPCh. 21 - Prob. 12QAPCh. 21 - Prob. 13QAPCh. 21 - Prob. 14QAPCh. 21 - Prob. 15QAPCh. 21 - Prob. 16QAPCh. 21 - Prob. 17QAPCh. 21 - Write a balanced net ionic equation for the...Ch. 21 - Prob. 19QAPCh. 21 - Prob. 20QAPCh. 21 - Prob. 21QAPCh. 21 - Prob. 22QAPCh. 21 - Prob. 23QAPCh. 21 - Prob. 24QAPCh. 21 - Prob. 25QAPCh. 21 - Prob. 26QAPCh. 21 - Prob. 27QAPCh. 21 - Prob. 28QAPCh. 21 - Prob. 29QAPCh. 21 - Prob. 30QAPCh. 21 - Prob. 31QAPCh. 21 - Prob. 32QAPCh. 21 - Prob. 33QAPCh. 21 - Prob. 34QAPCh. 21 - The average concentration of bromine (as bromide)...Ch. 21 - Prob. 36QAPCh. 21 - Iodine can be prepared by allowing an aqueous...Ch. 21 - Prob. 38QAPCh. 21 - Prob. 39QAPCh. 21 - Prob. 40QAPCh. 21 - Prob. 41QAPCh. 21 - Prob. 42QAPCh. 21 - Prob. 43QAPCh. 21 - Prob. 44QAPCh. 21 - Prob. 45QAPCh. 21 - Given...Ch. 21 - What is the concentration of fluoride ion in a...Ch. 21 - Calculate the solubility in grams per 100 mL of...Ch. 21 - Prob. 49QAPCh. 21 - Follow the directions for Problem 49 for the...Ch. 21 - Consider the equilibrium system HF(aq)H+(aq)+F(aq)...Ch. 21 - Applying the tables in Appendix 1 to...Ch. 21 - Consider the reaction 4NH3(g)+5O2(g)4NO(g)+6H2O(g)...Ch. 21 - Data are given in Appendix 1 for white phosphorus,...Ch. 21 - Prob. 55QAPCh. 21 - Prob. 56QAPCh. 21 - Sodium hypochlorite is produced by the...Ch. 21 - Prob. 58QAPCh. 21 - Prob. 59QAPCh. 21 - Prob. 60QAPCh. 21 - Consider the reduction of nitrate ion in acidic...Ch. 21 - Prob. 62QAPCh. 21 - Choose the strongest acid from each group. (a)...Ch. 21 - Prob. 64QAPCh. 21 - Prob. 65QAPCh. 21 - Prob. 66QAPCh. 21 - Prob. 67QAPCh. 21 - Prob. 68QAPCh. 21 - Prob. 69QAPCh. 21 - Explain why (a) acid strength increases as the...Ch. 21 - Prob. 71QAPCh. 21 - Prob. 72QAPCh. 21 - The amount of sodium hypochlorite in a bleach...Ch. 21 - Prob. 74QAP
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