Chemistry the Central Science 13th Edition Custom for Lamar University
Chemistry the Central Science 13th Edition Custom for Lamar University
13th Edition
ISBN: 9781269962667
Author: Theodore L. Brown, H. Eugene LeMay Jr., Bruce E. Bursten, Batherine J. Murphy, Patrick M. Woodward, Matthew W. Stoltzfus
Publisher: Pearson Learning Center
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Chapter 13, Problem 1DE

Which element is oxidized, and which is reduced in the following reactions?

  1. N2(g) + 3 H2(g) 2 NH3(g)
  2. 3Fe(NO3)2(aq) + 2Al(s) →
  3. 3 Fe(s) + 2 Al(NO3)3(aq)
  4. Cl2(aq) + 2 NaI(aq) I2(aq) + 2 NaC1(a9)
  5. PbS(s) + 4H2O2(aq) PbSO4(s) + 4H2O(l)

(a)

Expert Solution
Check Mark
Interpretation Introduction

To determine: The elements that are getting reduced and oxidized.

Answer to Problem 1DE

Solution: In the given reaction, nitrogen (N) is getting reduced and hydrogen (H) is getting oxidized.

Explanation of Solution

The given reaction is,

N2(g)+3H2(g)2NH3(g)

The loss of the electrons by the substance is known as oxidation and the gain of the electrons by the substance is known as reduction. The substance which donates the electrons is said to be oxidized whereas the substance which accepts the electrons is said to be reduced.

Oxidation number represents the oxidation state of the ions. An increase in oxidation number occurs by the loss of electrons while the oxidation number decreases by the gaining of electrons.

The rules for assigning the oxidation number are,

  • The oxidation number of a free element is always taken as zero.
  • The oxidation number of H is +1 , but it becomes 1 when combined with less electronegative atom.
  • The oxidation number of O is 2 but in peroxides is 1 .
  • The oxidation number of group 1 element is taken as +1 .
  • The oxidation number of group 2 element is taken as +2 .
  • The oxidation number of group 17 element is taken as 1 .
  • In a neutral compound, the sum of the oxidation number of all the atoms is taken as 0 .
  • For a polyatomic ion, the sum of the oxidation numbers is equal to the charge on the ion.

The oxidation number of a free element is always taken as zero. Therefore, the oxidation state of N2(g) and H2(g) is 0 .

NH3 is a neutral compound. In a neutral compound, the sum of the oxidation number of all the atoms is taken as 0 .

Therefore,

ON+3OH=0

Here,

  • ON is the oxidation state of N .
  • OH is the oxidation state of H .

Substitute the value +1 for the oxidation number of H .

ON+3(1)=0ON=3

Hence, the oxidation number of N in NH3 is 3 and the oxidation number of H in NH3 is +1 .

In this reaction, the oxidation number of hydrogen (H) is increased from 0 to +1 . Hence, hydrogen atom (H) is getting oxidized in this reaction.

The oxidation number of nitrogen (N) changes from 0 to 3 . Therefore, a decrease in oxidation number indicates that the nitrogen (N) is getting reduced in this reaction.

Conclusion

The oxidation number of hydrogen (H) is increased from 0 to +1 . Hence, hydrogen atom (H) is getting oxidized in this reaction.

The oxidation number of nitrogen (N) is decreased from 0 to 3 . Therefore, nitrogen (N) is getting reduced in this reaction.

(b)

Expert Solution
Check Mark
Interpretation Introduction

To determine: The elements that are getting reduced and oxidized.

Answer to Problem 1DE

Solution: In the given reaction, iron (Fe) is getting reduced and aluminum (Al) is getting oxidized.

Explanation of Solution

The given reaction is,

3Fe(NO3)2(aq)+2Al(s)3Fe(s)+2Al(NO3)3(aq)

The loss of the electrons by the substance is known as oxidation and the gain of the electrons by the substance is known as reduction. The substance which donates the electrons is said to be oxidized whereas the substance which accepts the electrons is said to be reduced.

Oxidation number represents the oxidation state of the ions. An increase in oxidation number occurs by the loss of electrons while the oxidation number decreases by the gaining of electrons.

The oxidation number of a free element is always taken as zero. Therefore, the oxidation state of Fe(s) and Al(s) is 0 .

Fe(NO3)2 and Al(NO3)3 are the neutral compounds. In a neutral compound, the sum of the oxidation number of all the atoms is taken as 0 .

The oxidation number of Fe in Fe(NO3)2 is calculated by the formula,

Therefore,

2ONO3+OFe=0

Here,

  • ONO3 is the oxidation state of NO3 .
  • OFe is the oxidation state of Fe .

Substitute the value 1 for the oxidation number of nitrate ion (NO3) .

2(1)+OFe=0OFe=+2

Hence, the oxidation number of Fe in Fe(NO3)2 is +2 .

The oxidation number of Al in Al(NO3)3 is calculated by the formula,

Therefore,

3ONO3+OAl=0

Here,

  • ONO3 is the oxidation state of NO3 .
  • OAl is the oxidation state of Al .

Substitute the value 1 for the oxidation number of nitrate ion (NO3) .

3(1)+OAl=0OAl=+3

Hence, the oxidation number of Al in Al(NO3)3 is +3 .

In this reaction, the oxidation number of aluminum (Al) is increased from 0 to +3 . Hence, aluminum (Al) is getting oxidized in this reaction.

The oxidation number of iron (Fe) changes from +2 to 0 . Therefore, a decrease in oxidation number indicates that iron (Fe) is getting reduced in this reaction.

Conclusion

The oxidation number of aluminum (Al) is increased from 0 to +3 . Hence, aluminum (Al) is getting oxidized in this reaction.

The oxidation number of iron (Fe) is decreased from +2 to 0 . Therefore, iron (Fe) is getting reduced in this reaction.

(c)

Expert Solution
Check Mark
Interpretation Introduction

To determine: The elements that are getting reduced and oxidized.

Answer to Problem 1DE

Solution: In the given reaction, chlorine (Cl) is getting reduced and iodine (I) is getting oxidized.

Explanation of Solution

The given reaction is,

Cl2(aq)+2NaI(aq)I2(aq)+2NaCl(aq)

The loss of the electrons by the substance is known as oxidation and the gain of the electrons by the substance is known as reduction. The substance which donates the electrons is said to be oxidized whereas the substance which accepts the electrons is said to be reduced.

Oxidation number represents the oxidation state of the ions. An increase in oxidation number occurs by the loss of electrons while the oxidation number decreases by the gaining of electrons.

The oxidation number of a free element is always taken as zero. Therefore, the oxidation state of Cl2(aq) and I2(aq) is 0 .

NaI and NaCl are the neutral compounds. In a neutral compound, the sum of the oxidation number of all the atoms is taken as 0 .

The oxidation number of a neutral atom NaCl is calculated by the formula,

Therefore,

ONa+OCl=0

Here,

  • ONa is the oxidation state of Na .
  • OCl is the oxidation state of Cl .

Substitute the value +1 for the oxidation number of Na .

(+1)+OCl=0OCl=1

Hence, the oxidation number of Cl in NaCl is 1 .

The oxidation number of a neutral atom NaI is calculated by the formula,

Therefore,

ONa+OI=0

Here,

  • ONa is the oxidation state of Na .
  • OI is the oxidation state of I .

Substitute the value +1 for the oxidation number of Na .

(+1)+OI=0OI=1

Hence, the oxidation number of I in NaI is 1 .

In this reaction, the oxidation number of iodine (I) is increased from 1 to 0 . Hence, iodine (I) is getting oxidized in this reaction.

The oxidation number of chlorine (Cl) changes from 0 to 1 . Therefore, a decrease in oxidation number indicates that chlorine (Cl) is getting reduced in this reaction.

Conclusion

The oxidation number of iodine (I) is increased from 1 to 0 . Hence, iodine (I) is getting oxidized in this reaction.

The oxidation number of chlorine (Cl) is decreased from 0 to 1 . Therefore, chlorine (Cl) is getting reduced in this reaction.

(d)

Expert Solution
Check Mark
Interpretation Introduction

To determine: The elements that are getting reduced and oxidized.

Answer to Problem 1DE

Solution: In the given reaction, oxygen (O) is getting reduced and sulfur (S) is getting oxidized.

Explanation of Solution

The given reaction is,

PbS(s)+4H2O2(aq)PbSO4(s)+4H2O(l)

The loss of the electrons by the substance is known as oxidation and the gain of the electrons by the substance is known as reduction. The substance which donates the electrons is said to be oxidized whereas the substance which accepts the electrons is said to be reduced.

Oxidation number represents the oxidation state of the ions. An increase in oxidation number occurs by the loss of electrons while the oxidation number decreases by the gaining of electrons.

PbS , H2O2 , PbSO4 and H2O are the neutral compounds. In a neutral compound, the sum of the oxidation number of all the atoms is taken as 0 .

The oxidation number of a neutral atom PbS is calculated by the formula,

Therefore,

OPb+OS=0

Here,

  • OPb is the oxidation state of Pb .
  • OS is the oxidation state of S .

Substitute the value +2 for the oxidation number of Pb .

(+2)+OS=0OS=2

Hence, the oxidation number of S in PbS is 2 .

The oxidation number of S in PbSO4 is calculated by the formula,

Therefore,

OPb+OS+4OO=0

Here,

  • OPb is the oxidation state of Pb .
  • OS is the oxidation state of S .
  • OO is the oxidation state of O .

Substitute the value +2 for the oxidation number of Pb and 2 for the oxidation number of O .

(+2)+OS+4(2)=0OS=+6

Hence, the oxidation number of S in PbSO4 is +6 .

The oxidation number of O in H2O is calculated by the formula,

Therefore,

2OH+OO=0

Here,

  • OH is the oxidation state of H .
  • OO is the oxidation state of O .

Substitute the value +1 for the oxidation number of H .

2(+1)+OO=0OO=2

Hence, the oxidation number of O in H2O is 2 .

The oxidation number of O in H2O2 is calculated by the formula,

Therefore,

2OH+2OO=0

Here,

  • OH is the oxidation state of H .
  • OO is the oxidation state of O .

Substitute the value +1 for the oxidation number of H .

2(+1)+2OO=0OO=1

Hence, the oxidation number of O in H2O2 is 1 .

In this reaction, the oxidation number of sulfur (S) is increased from 2 to +6 . Hence sulfur (S) is getting oxidized in this reaction.

The oxidation number of oxygen (O) changes from 1 to 2 . Therefore, a decrease in oxidation number indicates that oxygen (O) is getting reduced in this reaction.

Conclusion

The oxidation number of sulfur (S) is increased from 2 to +6 . Hence sulfur (S) is getting oxidized in this reaction.

The oxidation number of oxygen (O) is decreased from 1 to 2 . Therefore, oxygen (O) is getting reduced in this reaction.

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Chapter 13 Solutions

Chemistry the Central Science 13th Edition Custom for Lamar University

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