(a)
Interpretation:
The five
Concept introduction:
The reaction in which both oxidation and reduction reaction occur simultaneously is called a redox reaction. According to the law of conservation of mass, the mass of all the species in a reaction must be balanced. Therefore balancing is necessary to conserve the mass and even the charge must be balanced to maintain the overall charge of the reaction.
(a)
Answer to Problem 30E
The balanced equations are as follows,
Explanation of Solution
The balanced equation is defined as follows,
The reduction half cell reaction is,
The change in the oxidation number of nitrogen is from
The oxidation half reaction is,
The change in oxidation number of copper is from zero to
As the atoms other than hydrogen and oxygen are already balanced, so directly balance the oxygen atom in the reduction half reaction by adding water to right hand side,
Balance the hydrogen atoms in the reduction half reaction by adding
Balance the charge by adding appropriate number of electrons to the left hand side,
As the atoms other than hydrogen and oxygen are already balanced in the oxidation half reaction and there are also no hydrogen or oxygen atom in the reaction. Therefore directly balance the charge by adding electrons to the right hand side.
Multiply equation (1) by
Cancel similar terms on both the sides. The final equation is,
(b)
Interpretation:
The five oxidation-reduction reactions are given. The balancing of all the reactions in acidic media using half-reaction method is to be done.
Concept introduction:
The reaction in which both oxidation and reduction reaction occur simultaneously is called a redox reaction. According to the law of conservation of mass, the mass of all the species in a reaction must be balanced. Therefore balancing is necessary to conserve the mass and even the charge must be balanced to maintain the overall charge of the reaction.
(b)
Answer to Problem 30E
The balanced equations are as follows,
Explanation of Solution
The balanced equation is defined as follows,
The reduction half cell reaction is,
The change in the oxidation number of chromium is from
The oxidation half reaction is,
The change in oxidation number of chlorine is from
Balance all the atoms except hydrogen and oxygen in the reduction half reaction,
Balance the oxygen in the reduction half reaction by adding water to right hand side,
Balance the hydrogen atoms in the reduction half reaction by adding
Balance the charge by adding appropriate number of electrons to the left hand side,
Balance all the atoms except hydrogen and oxygen in the oxidation half,
As no hydrogen or oxygen atom is present in the above reaction. So, directly balance the charge by adding electrons at the appropriate side,
Multiply equation (4) by
Cancel similar terms on both the sides to get the final equation as,
(c)
Interpretation:
The five oxidation-reduction reactions are given. The balancing of all the reactions in acidic media using half-reaction method is to be done.
Concept introduction:
The reaction in which both oxidation and reduction reaction occur simultaneously is called a redox reaction. According to the law of conservation of mass, the mass of all the species in a reaction must be balanced. Therefore balancing is necessary to conserve the mass and even the charge must be balanced to maintain the overall charge of the reaction.
(c)
Answer to Problem 30E
The balanced equations are as follows,
Explanation of Solution
The balanced equation is defined as follows,
The reduction half cell reaction is,
The change in the oxidation number of lead is from
The oxidation half reaction is,
The change in oxidation number of bromine is from zero to
All the elements except hydrogen and oxygen are already balanced so directly balance the oxygen atoms in the reduction half reaction by adding water molecules to the right hand side,
Balance the hydrogen atoms by adding
Balance the charge by adding appropriate number of electrons to the right hand side,
All the atoms except hydrogen and oxygen in oxidation half reaction are already balanced and oxygen is also balanced. So, directly balance hydrogen atoms by adding
Balance the charge by adding electrons at the appropriate side,
Add the oxidation and reduction half reaction to get the final equation,
Cancel similar terms on both the sides. The final equation is,
The final equation is,
(d)
Interpretation:
The five oxidation-reduction reactions are given. The balancing of all the reactions in acidic media using half-reaction method is to be done.
Concept introduction:
The reaction in which both oxidation and reduction reaction occur simultaneously is called a redox reaction. According to the law of conservation of mass, the mass of all the species in a reaction must be balanced. Therefore balancing is necessary to conserve the mass and even the charge must be balanced to maintain the overall charge of the reaction.
(d)
Answer to Problem 30E
The balanced equations are as follows,
Explanation of Solution
The balanced equation is defined as follows,
The reduction half cell reaction is,
The change in the oxidation number of bismuth is from
The oxidation half reaction is,
The change in oxidation number of manganese is from
Balance all the atoms except hydrogen and oxygen in the reduction half cell,
Balance the oxygen in the reduction half reaction by adding water to right hand side,
Balance the hydrogen atoms in the reduction half reaction by adding
Balance the charge by adding appropriate number of electrons to the left hand side,
As all the atoms except hydrogen are already balanced in the oxidation half reaction. So, directly balance the oxygen atoms by adding water molecule to the left hand side,
Balance the hydrogen atoms by adding
Balance the charge by adding electrons at the appropriate side,
Multiply equation (7) by
Cancel similar terms on both the sides. The final equation is,
(e)
Interpretation:
The five oxidation-reduction reactions are given. The balancing of all the reactions in acidic media using half-reaction method is to be done.
Concept introduction:
The reaction in which both oxidation and reduction reaction occur simultaneously is called a redox reaction. According to the law of conservation of mass, the mass of all the species in a reaction must be balanced. Therefore balancing is necessary to conserve the mass and even the charge must be balanced to maintain the overall charge of the reaction.
(e)
Explanation of Solution
The balanced equation is defined as follows,
The reduction half cell reaction is,
The change in the oxidation number of arsenic is from
The oxidation half reaction is,
The change in oxidation number of zinc is from zero to
All the atoms except hydrogen and oxygen in the reduction half cell are already balanced. So, directly balance the oxygen by adding water to right hand side,
Balance the hydrogen atoms in the reduction half reaction by adding
Balance the charge by adding appropriate number of electrons to the left hand side,
As all the atoms except hydrogen are already balanced in the oxidation half reaction and there are no hydrogen or oxygen atom. So, directly balance the charge by adding electrons to the right hand side,
Multiply equation (10) by
Cancel similar terms on both the sides. The final equation is,
Want to see more full solutions like this?
Chapter 17 Solutions
Bundle: Chemistry: An Atoms First Approach, 2nd, Loose-Leaf + OWLv2, 4 terms (24 months) Printed Access Card
- In the kinetic theory of gases, explain the concept of the velocity distribution function of particles.arrow_forwardHi!! Please provide a solution that is handwritten. this is an inorganic chemistry question please answer accordindly!! its just one question with parts JUST ONE QUESTION with its parts spread out till part (g), please answer EACH part till the end and dont just provide wordy explanations wherever asked for structures, please DRAW DRAW them on a paper and post clearly!! answer the full question with all calculations step by step EACH PART CLEARLY please thanks!! im reposting this please solve all parts and drawit not just word explanations!!arrow_forwardHi!! Please provide a solution that is handwritten. this is an inorganic chemistry question please answer accordindly!! its just one question with parts JUST ONE QUESTION, please answer EACH part PART A AND PART B!!!!! till the end and dont just provide wordy explanations wherever asked for structures, please DRAW DRAW them on a paper and post clearly!! answer the full question with all details EACH PART CLEARLY please thanks!! im reposting this please solve all parts and drawit not just word explanations!!arrow_forward
- Hi!! Please provide a solution that is handwritten. this is an inorganic chemistry question please answer accordindly!! its just one question with parts JUST ONE QUESTION, please answer EACH part till the end and dont just provide wordy explanations wherever asked for structures, please DRAW DRAW them on a paper and post clearly!! answer the full question with all details EACH PART CLEARLY please thanks!! im reposting this please solve all parts and drawit not just word explanations!!arrow_forward8b. Explain, using key intermediates, why the above two products are formed instead of the 1,2-and 1,4- products shown in the reaction below. CIarrow_forward(5pts) Provide the complete arrow pushing mechanism for the chemical transformation depicted below Use proper curved arrow notation that explicitly illustrates all bonds being broken, and all bonds formed in the transformation. Also, be sure to include all lone pairs and formal charges on all atoms involved in the flow of electrons. CH3O H I I CH3O-H H I ① Harrow_forward
- 1. For each of the following, predict the products of the reaction by writing a balance net ionic equation for each. If no reaction is expected, then write NO REACTION. (a) AgNO3 (aq) is mixed with Na2CO3 (aq). (b) An aqueous solution of ammonium sulfate is added to an aqueous solution of calcium chloride. (c) RbI (aq) is added to Pb(NO3)2 (aq). (d) NaCl (s) is added to AgNO3 (aq).arrow_forward4. Determine the amount in grams of AgCl (s) formed when 2.580 g AgNO3(s) is added to 45.00 mL of a 0.1250 M CrCl3 (aq) (The other product is aqueous chromium (III) nitrate) 5. Determine the amount (in grams) of Cobalt (II) phosphate formed when an aqueous solution of 30.0 ml of 0.450 M Sodium Phosphate is mixed with 20.0 mL of 0.500 M aqueous solution of cobalt (II) nitrate. (The other product is aqueous sodium nitrate)arrow_forward7. Consider the following reaction that describes the dissolution of copper metal in nitric acid: Cu (s) + 4 HNO3 (aq) → Cu(NO3)2 (aq) + 2 H₂O (1) + 2 NO2 (g) How many mL of 3.50 M HNO3 (aq) are required to dissolve 20.00 g Cu?arrow_forward
- Chemistry & Chemical ReactivityChemistryISBN:9781337399074Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningChemistry & Chemical ReactivityChemistryISBN:9781133949640Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning
- Chemistry: An Atoms First ApproachChemistryISBN:9781305079243Author:Steven S. Zumdahl, Susan A. ZumdahlPublisher:Cengage LearningChemistryChemistryISBN:9781305957404Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCostePublisher:Cengage Learning