MCGRAW: CHEMISTRY THE MOLECULAR NATURE
MCGRAW: CHEMISTRY THE MOLECULAR NATURE
8th Edition
ISBN: 9781264330430
Author: VALUE EDITION
Publisher: MCG
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Chapter 21, Problem 21.17P

(a)

Interpretation Introduction

Interpretation:

The following skeleton reaction has to be balanced and the oxidizing and reducing agents has to be identified.

  NO2(g)NO3(aq)+ NO2(aq) [basic]

Concept Introduction:

Oxidizing agent:

A compound or group that causes the oxidation in another compound or group is said to be an oxidizing agent.  Most common oxidizing agents are oxygen, hydrogen peroxide and halogens.

Reducing agent:

A compound or group that causes the reduction in another compound or group is said to be a reducing agent.

Oxidation:

A reaction in which a compound gains electrons is said to be oxidation.

Reduction:

A reaction in which a compound loses electrons is said to be reduction.

(a)

Expert Solution
Check Mark

Explanation of Solution

The given reaction is

  NO2(g)NO3(aq)+ NO2(aq) [basic]

The balancing of the reaction is as follows:

Step-1:

The given reaction has to be divided into half-reactions.

  NO2(g)NO3(aq) NO2(g) NO2(aq)

Step-2:

Balance the half-reactions.

To balance the reactions, atoms other than oxygen and hydrogen are not needed.

Balance O atoms with H2O:

  NO2(g)NO3(aq) NO2(g) NO2(aq)H2O+NO2(g)NO3(aq) NO2(g) NO2(aq)

Balance H atoms with H+:

  NO2(g)NO3(aq) NO2(g) NO2(aq)H2O+NO2(g)NO3(aq) NO2(g) NO2(aq)H2O+NO2(g)NO3(aq)+2H+ NO2(g) NO2(aq)

Addition of electrons:

  NO2(g)NO3(aq) NO2(g) NO2(aq)H2O+NO2(g)NO3(aq) NO2(g) NO2(aq)H2O+NO2(g)NO3(aq)+2H+ NO2(g) NO2(aq)H2O+NO2(g)NO3(aq)+2H++1e- 1e-+NO2(g) NO2(aq)

Step-3:

Half-reactions are added and cancel the species appearing on both sides.

  H2O+NO2(g)NO3(aq)+2H++1e-1e-+NO2(g) NO2(aq)_H2O+2NO2(g)NO3(aq)+NO2(aq)+2H+

To balance H+, OH- are added on both sides of the reaction.  As there are two H+ in right sides, two OH- are added on both sides.

  H2O+2NO2(g)+2OH-NO3(aq)+NO2(aq)+2H++2OH-

The reaction is balanced on cancellation of water molecules that are present on both sides.  The final balanced reaction is as follows:

  2NO2(g)+2OH-NO3(aq)+NO2(aq)+H2O

In the above equation, the oxidizing agent and the reducing agent is NO2.

(b)

Interpretation Introduction

Interpretation:

The following skeleton reaction has to be balanced and the oxidizing and reducing agents has to be identified.

  Zn(s)+ NO3(aq)Zn(OH)42(aq)+NH3(g) [basic]

Concept Introduction:

Oxidizing agent:

A compound or group that causes the oxidation in another compound or group is said to be an oxidizing agent.  Most common oxidizing agents are oxygen, hydrogen peroxide and halogens.

Reducing agent:

A compound or group that causes the reduction in another compound or group is said to be a reducing agent.

Oxidation:

A reaction in which a compound gains electrons is said to be oxidation.

Reduction:

A reaction in which a compound loses electrons is said to be reduction.

(b)

Expert Solution
Check Mark

Explanation of Solution

The given reaction is

  Zn(s)+ NO3(aq)Zn(OH)42(aq)+NH3(g) [basic]

The balancing of the reaction is as follows:

Step-1:

The given reaction has to be divided into half-reactions.

  ZnZn(OH)42- NO3NH3

Step-2:

Balance the half-reactions.

To balance the reactions, atoms other than oxygen and hydrogen are not needed.

Balance O atoms with H2O:

  ZnZn(OH)42- NO3NH3Zn+4H2OZn(OH)42- NO3NH3+3H2O

Balance H atoms with H+:

  ZnZn(OH)42- NO3NH3Zn+4H2OZn(OH)42- NO3NH3+3H2OZn+4H2OZn(OH)42-+4H+ 9H++NO3NH3+3H2O

Addition of electrons:

  ZnZn(OH)42- NO3NH3Zn+4H2OZn(OH)42- NO3NH3+3H2OZn+4H2OZn(OH)42-+4H+ 9H++NO3NH3+3H2OZn+4H2OZn(OH)42-+4H++2e- 8e-+9H++NO3NH3+3H2O

Step-3:

Each half reaction is multiplied with some integer to make electrons lost equal to electrons gained.

  4(Zn+4H2OZn(OH)42-+4H++2e-) 1(8e-+9H++NO3NH3+3H2O)4Zn+16H2O4Zn(OH)42-+16H++8e- 8e-+9H++NO3NH3+3H2O

Step-4:

Half-reactions are added and cancel the species appearing on both sides.

  4Zn+16H2O134Zn(OH)42-+16H+7+8e-8e-+9H++NO3NH3+3H2O_4Zn+NO3+13H2O4Zn(OH)42-+NH3+7H+

To balance H+, OH- are added on both sides of the reaction.  As there are seven H+ on right sides, seven OH- are added on both sides.

  4Zn+NO3+13H2O+7OH4Zn(OH)42-+NH3+7H++7OH-

The reaction is balanced on cancellation of water molecules that are present on both sides.  The final balanced reaction is as follows:

  4Zn+NO3+6H2O+7OH4Zn(OH)42-+NH3

In the above equation, the oxidizing agent is NO3- and the reducing agent is Zn.

(c)

Interpretation Introduction

Interpretation:

The following skeleton reaction has to be balanced and the oxidizing and reducing agents has to be identified.

  H2S(g)+NO3-(aq)S8(s)+NO(g) [acidic]

Concept Introduction:

Oxidizing agent:

A compound or group that causes the oxidation in another compound or group is said to be an oxidizing agent.  Most common oxidizing agents are oxygen, hydrogen peroxide and halogens.

Reducing agent:

A compound or group that causes the reduction in another compound or group is said to be a reducing agent.

Oxidation:

A reaction in which a compound gains electrons is said to be oxidation.

Reduction:

A reaction in which a compound loses electrons is said to be reduction.

(c)

Expert Solution
Check Mark

Explanation of Solution

The given reaction is

  H2S(g)+NO3-(aq)S8(s)+NO(g) [acidic]

The balancing of the reaction is as follows:

Step-1:

The given reaction has to be divided into half-reactions.

  H2SS8 NO3NO

Step-2:

Balance the half-reactions.

To balance the reactions, atoms other than oxygen and hydrogen are not needed.

Balance O atoms with H2O and balance S atoms:

  H2SS8 NO3NO8H2SS8 NO3NO+2H2O

Balance H atoms with H+:

  H2SS8 NO3NO8H2SS8 NO3NO+2H2O8H2SS8+16H+ 4H++NO3NO+2H2O

Addition of electrons:

  H2SS8 NO3NO8H2SS8 NO3NO+2H2O8H2SS8+16H+ 4H++NO3NO+2H2O8H2SS8+16H++16e- 3e-+4H++NO3NO+2H2O

Step-3:

Each half reaction is multiplied with some integer to make electrons lost equal to electrons gained.

  3(8H2SS8+16H++16e-) 16(3e-+4H++NO3NO+2H2O)24H2S3S8+48H++48e- 48e-+64H++16NO316NO+32H2O

Step-4:

Half-reactions are added and cancel the species appearing on both sides.

   24H2S3S8+48H++48e-48e-+64H+16+16NO316NO+32H2O_24H2S+16NO3+16H+3S8+16NO+32H2O

As the reaction is acidic, OH- are not added.  The final balanced equation is as follows:

  24H2S+16NO3+16H+3S8+16NO+32H2O

In the above equation, the oxidizing agent is NO3- and the reducing agent is H2S.

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Chapter 21 Solutions

MCGRAW: CHEMISTRY THE MOLECULAR NATURE

Ch. 21.4 - Prob. 21.6AFPCh. 21.4 - Prob. 21.6BFPCh. 21.4 - Prob. 21.7AFPCh. 21.4 - Prob. 21.7BFPCh. 21.4 - Prob. 21.8AFPCh. 21.4 - Prob. 21.8BFPCh. 21.7 - The most ionic and least ionic of the common...Ch. 21.7 - Prob. 21.9BFPCh. 21.7 - Prob. 21.10AFPCh. 21.7 - Prob. 21.10BFPCh. 21.7 - Prob. 21.11AFPCh. 21.7 - Prob. 21.11BFPCh. 21.7 - In the final steps of the ETC, iron and copper...Ch. 21.7 - Prob. B21.2PCh. 21 - Prob. 21.1PCh. 21 - Prob. 21.2PCh. 21 - Prob. 21.3PCh. 21 - Water is used to balance O atoms in the...Ch. 21 - Prob. 21.5PCh. 21 - Prob. 21.6PCh. 21 - Prob. 21.7PCh. 21 - Prob. 21.8PCh. 21 - Prob. 21.9PCh. 21 - Prob. 21.10PCh. 21 - Prob. 21.11PCh. 21 - Prob. 21.12PCh. 21 - Prob. 21.13PCh. 21 - Prob. 21.14PCh. 21 - Prob. 21.15PCh. 21 - Prob. 21.16PCh. 21 - Prob. 21.17PCh. 21 - Prob. 21.18PCh. 21 - Prob. 21.19PCh. 21 - Prob. 21.20PCh. 21 - Aqua regia, a mixture of concentrated HNO3 and...Ch. 21 - Consider the following general voltaic...Ch. 21 - Why does a voltaic cell not operate unless the two...Ch. 21 - Prob. 21.24PCh. 21 - Prob. 21.25PCh. 21 - Prob. 21.26PCh. 21 - Consider the following voltaic cell: In which...Ch. 21 - Consider the following voltaic cell: In which...Ch. 21 - Prob. 21.29PCh. 21 - Prob. 21.30PCh. 21 - A voltaic cell is constructed with an Fe/Fe2+...Ch. 21 - Prob. 21.32PCh. 21 - Prob. 21.33PCh. 21 - Prob. 21.34PCh. 21 - Prob. 21.35PCh. 21 - What does a negative indicate about a redox...Ch. 21 - Prob. 21.37PCh. 21 - In basic solution, Se2− and ions react...Ch. 21 - Prob. 21.39PCh. 21 - Prob. 21.40PCh. 21 - Use the emf series (Appendix D) to arrange each...Ch. 21 - Prob. 21.42PCh. 21 - Prob. 21.43PCh. 21 - Prob. 21.44PCh. 21 - Prob. 21.45PCh. 21 - Prob. 21.46PCh. 21 - Prob. 21.47PCh. 21 - Prob. 21.48PCh. 21 - Prob. 21.49PCh. 21 - Prob. 21.50PCh. 21 - Prob. 21.51PCh. 21 - Prob. 21.52PCh. 21 - Prob. 21.53PCh. 21 - Prob. 21.54PCh. 21 - Prob. 21.55PCh. 21 - Prob. 21.56PCh. 21 - Prob. 21.57PCh. 21 - Prob. 21.58PCh. 21 - Prob. 21.59PCh. 21 - Prob. 21.60PCh. 21 - Prob. 21.61PCh. 21 - Prob. 21.62PCh. 21 - Prob. 21.63PCh. 21 - Prob. 21.64PCh. 21 - Prob. 21.65PCh. 21 - Prob. 21.66PCh. 21 - Prob. 21.67PCh. 21 - Prob. 21.68PCh. 21 - Prob. 21.69PCh. 21 - Prob. 21.70PCh. 21 - Prob. 21.71PCh. 21 - Prob. 21.72PCh. 21 - Prob. 21.73PCh. 21 - Prob. 21.74PCh. 21 - Prob. 21.75PCh. 21 - Prob. 21.76PCh. 21 - Prob. 21.77PCh. 21 - Prob. 21.78PCh. 21 - Prob. 21.79PCh. 21 - Prob. 21.80PCh. 21 - Prob. 21.81PCh. 21 - Consider the following general electrolytic...Ch. 21 - Prob. 21.83PCh. 21 - Prob. 21.84PCh. 21 - Prob. 21.85PCh. 21 - Prob. 21.86PCh. 21 - In the electrolysis of molten NaBr: What product...Ch. 21 - Prob. 21.88PCh. 21 - Prob. 21.89PCh. 21 - Prob. 21.90PCh. 21 - Prob. 21.91PCh. 21 - Prob. 21.92PCh. 21 - Prob. 21.93PCh. 21 - Prob. 21.94PCh. 21 - Prob. 21.95PCh. 21 - Prob. 21.96PCh. 21 - Prob. 21.97PCh. 21 - Write a balanced half-reaction for the product...Ch. 21 - Prob. 21.99PCh. 21 - Prob. 21.100PCh. 21 - Prob. 21.101PCh. 21 - Prob. 21.102PCh. 21 - Prob. 21.103PCh. 21 - Prob. 21.104PCh. 21 - Prob. 21.105PCh. 21 - Prob. 21.106PCh. 21 - Prob. 21.107PCh. 21 - Prob. 21.108PCh. 21 - Prob. 21.109PCh. 21 - Prob. 21.110PCh. 21 - Prob. 21.111PCh. 21 - Prob. 21.112PCh. 21 - Prob. 21.113PCh. 21 - Prob. 21.114PCh. 21 - Prob. 21.115PCh. 21 - Prob. 21.116PCh. 21 - Prob. 21.117PCh. 21 - Prob. 21.118PCh. 21 - Prob. 21.119PCh. 21 - Prob. 21.120PCh. 21 - To examine the effect of ion removal on cell...Ch. 21 - Prob. 21.122PCh. 21 - Prob. 21.123PCh. 21 - Prob. 21.124PCh. 21 - Prob. 21.125PCh. 21 - Prob. 21.126PCh. 21 - Commercial electrolytic cells for producing...Ch. 21 - Prob. 21.129PCh. 21 - Prob. 21.130PCh. 21 - The following reactions are used in...Ch. 21 - Prob. 21.132PCh. 21 - Prob. 21.133PCh. 21 - Prob. 21.134PCh. 21 - Prob. 21.135PCh. 21 - If the Ecell of the following cell is 0.915 V,...Ch. 21 - Prob. 21.137PCh. 21 - Prob. 21.138PCh. 21 - Prob. 21.139PCh. 21 - Prob. 21.140PCh. 21 - Prob. 21.141PCh. 21 - Prob. 21.142PCh. 21 - Prob. 21.143PCh. 21 - Prob. 21.144PCh. 21 - Prob. 21.145PCh. 21 - Prob. 21.146PCh. 21 - Prob. 21.147PCh. 21 - Both Ti and V are reactive enough to displace H2...Ch. 21 - For the reaction ∆G° = 87.8 kJ/mol Identity the...Ch. 21 - Two voltaic cells are to be joined so that one...Ch. 21 - Prob. 21.152PCh. 21 - Prob. 21.153P
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