Foundations of College Chemistry 15e Binder Ready Version + WileyPLUS Registration Card
Foundations of College Chemistry 15e Binder Ready Version + WileyPLUS Registration Card
15th Edition
ISBN: 9781119231318
Author: Morris Hein
Publisher: Wiley (WileyPLUS Products)
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Chapter 17, Problem 10PE

( a)

Interpretation Introduction

Interpretation:

Oxidizing agent, reducing agent, oxidized element and reduced element in below reaction has to be determined.

CH4+O2CO2+H2O

Concept Introduction:

A redox reaction is a type of reaction that involves the change in oxidation number of a molecule, atom or ion changes due to transfer of electron from one species to another. A complete reaction involves oxidation and reduction.

Oxidation process represents loss of electrons. Reduction process represents gain of electrons. Oxidation numbers are the part of system that is formed to track electrons in reaction.

( a)

Expert Solution
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Explanation of Solution

Oxidation number of H is +1.

Expression to calculate the oxidation number of C in CH4 is as follows:

  [(OxidationnumberofC)+4(oxidationnumberofH)]=0        (1)

Rearrange equation (1).

  OxidationnumberofC=[4(oxidationnumberofH)]        (2)

Substitute of +1 oxidation number for H in equation (2).

  OxidationnumberofC=[4(oxidationnumberofH)]=[4(+1)]=4

Oxidation number of O is 2.

Expression to calculate the oxidation number of C in CO2 is as follows:

  [(OxidationnumberofC)+(oxidationnumberofO)]=0        (3)

Rearrange equation (3) for oxidation number of C.

  OxidationnumberofC=[2(oxidationnumberofO)]        (4)

Substitute 2 for oxidation number of O in equation (4).

  OxidationnumberofC=[2(oxidationnumberofO)]=[2(2)]=+4

Oxidation number of O2 is 0.

Oxidation number of H is +1.

Expression to calculate the oxidation number of O in H2O is as follows:

  [2(OxidationnumberofH)+(oxidationnumberofO)]=0        (5).

Rearrange equation (5) for oxidation number of O in H2O.

  OxidationnumberofO=[2(oxidationnumberofH)]        (6)

Substitute +1 for oxidation number of H in equation (6).

  OxidationnumberofO=[2(oxidationnumberofH)]=[2(1)]=2

Oxidation state of C in CH4 is 4 and it is increased to +4 in CO2. Hence, CH4 undergoes oxidation and so it acts as reducing agent. Oxidized element in given reaction is carbon.

Oxidation state of O in O2 is 0 and it is decreased to 2 in H2O. Hence, O2 undergo reduction and so it acts as oxidizing agent. Reduced element in given reaction is oxygen.

(b)

Interpretation Introduction

Interpretation:

Oxidizing agent, reducing agent, oxidized element and reduced element in below reaction has to be determined.

  Mg+FeCl3Fe+MgCl2

Concept Introduction:

Refer to part (a).

(b)

Expert Solution
Check Mark

Explanation of Solution

Oxidation number of Mg is 0.

Oxidation number of Cl is 1.

Expression to calculate the oxidation number of Mg in MgCl2 is as follows:

  [(OxidationnumberofMg)+2(oxidationnumberofCl)]=0        (7)

Rearrange equation (7) for oxidation number of Mg in MgCl2.

  OxidationnumberofMg=[2(oxidationnumberofCl)]        (8)

Substitute 1 for oxidation number of Cl in equation (8).

  OxidationnumberofMg=[2(oxidationnumberofCl)]=[2(1)]=+2

Expression to calculate the oxidation number of Fe in FeCl3 is as follows:

  [(OxidationnumberofFe)+3(oxidationnumberofCl)]=0        (9)

Rearrange equation (9) for oxidation number of Fe in FeCl3.

  OxidationnumberofFe=[3(oxidationnumberofCl)]        (10)

Substitute 1 for oxidation number of Cl in equation (10).

  OxidationnumberofFe=[3(oxidationnumberofCl)]=[3(1)]=3

Oxidation state of Mg is 0 and it is increased to +2 in MgCl2. Hence Mg is oxidized and it behaves as reducing agent. Oxidized element in given reaction is magnesium.

Oxidation state of Fe in FeCl3 is +3 and it is increased to 0 in Fe. Hence FeCl3 is reduced and it behaves as oxidizing agent. Reduced element in given reaction is iron.

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Chapter 17 Solutions

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