Chemical Principles: The Quest for Insight
Chemical Principles: The Quest for Insight
7th Edition
ISBN: 9781464183959
Author: Peter Atkins, Loretta Jones, Leroy Laverman
Publisher: W. H. Freeman
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Chapter 4, Problem 4H.11E

(a)

Interpretation Introduction

Interpretation:

Thestandard reaction entropyfor the formation of 1.00molH2O(l) at 25°C has to be determined.

Concept Introduction:

The degree of randomness in a system is the measured in terms of entropy.  Higher the entropy greater will be the disorder in the system.  The reactionentropy of a reaction in terms of the standard molar entropiesis the difference between the standard entropies of products and that of the reactants.  The negative reaction entropyindicates that the products are less disordered as compared to the reactants.

(a)

Expert Solution
Check Mark

Answer to Problem 4H.11E

The standard reaction entropy for the formation of 1.00molH2O(l) at 25°C is -163.35JK-1_.

Explanation of Solution

The balanced chemical reaction representing the formation of 1.00molH2O(l) is shown below.

  H2(g)+12O2(g)H2O(l)

The total entropy of reactants of the given reaction is calculated by the relation shown below.

    ΔS°(reactants)=(1mol)ΔSm(H2,g)+(12mol)ΔSm(O2,g)        (1)

Where,

  • ΔS°(reactants) is total entropy of reactants.
  • ΔSm(H2,g) is the molar entropy of H2(g).
  • ΔSm(O2,g) is the molar entropy of O2(g).

The value of ΔSm(H2,g) is 130.7JK1mol1.

The value of ΔSm(O2,g) is 205.1JK1mol1.

Substitute the value of ΔSm(H2,g) and ΔSm(O2,g) in equation (1).

  ΔS°(reactants)=(1mol)×(130.7JK1mol1)+(12mol)×(205.1JK1mol1)=130.7JK1+102.55JK1=233.25JK1

The total entropy of products of the given reaction is calculated by the relation shown below.

    ΔS°(products)=(1mol)ΔSm(H2O,l)        (2)

Where,

  • ΔS°(products) is total entropy of product.
  • ΔSm(H2O,l) is the molar entropy of H2O(l).

The value of ΔSm(H2O,l) is 69.9JK1mol1.

Substitute the value of ΔSm(H2O,l) in equation (2).

  ΔS°(products)=(1mol)×(69.9JK1mol1)=69.9JK1

The standard reaction entropy of the given reaction is calculated by the relation shown below.

  ΔS°=ΔS°(products)ΔS°(reactants)        (3)

Where,

  • ΔS° is standard reaction entropy.
  • ΔS°(reactants) is total entropy of reactants.
  • ΔS°(products) is total entropy of product.

The value of ΔS°(reactants) is 233.25JK1.

The value of ΔS°(products) is 69.9JK1.

Substitute the value of ΔS°(reactants) and ΔS°(products) in equation (3).

    ΔS°=69.9JK1233.25JK1=163.35JK1

The obtained standard reaction entropy of the given reaction is negative, which indicates that the products are less disordered as compared to the reactants.

Thus, the standard reaction entropy for the formation of 1.00molH2O(l) at 25°C is -163.35JK-1_.

(b)

Interpretation Introduction

Interpretation:

The standard reaction entropy for the oxidation of 1.00molCO(g) at 25°C has to be determined.

Concept Introduction:

Same as part (a).

(b)

Expert Solution
Check Mark

Answer to Problem 4H.11E

The standard reaction entropy for the oxidation of 1.00molCO(g) at 25°C is -86.48JK-1_.

Explanation of Solution

The balanced chemical reaction representing the oxidation of 1.00molCO(g) is shown below.

  CO(g)+12O2(g)CO2(g)

The total entropy of reactants of the given reaction is calculated by the relation shown below.

    ΔS°(reactants)=(1mol)ΔSm(CO,g)+(12mol)ΔSm(O2,g)        (4)

Where,

  • ΔS°(reactants) is total entropy of reactants.
  • ΔSm(CO,g) is the molar entropy of CO(g).
  • ΔSm(O2,g) is the molar entropy of O2(g).

The value of ΔSm(CO,g) is 197.67JK1mol1.

The value of ΔSm(O2,g) is 205.1JK1mol1.

Substitute the value of ΔSm(CO,g) and ΔSm(O2,g) in equation (4).

  ΔS°(reactants)=(1mol)×(197.67JK1mol1)+(12mol)×(205.1JK1mol1)=197.67JK1+102.55JK1=300.22JK1

The total entropy of products of the given reaction is calculated by the relation shown below.

    ΔS°(products)=(1mol)ΔSm(CO2,g)        (5)

Where,

  • ΔS°(products) is total entropy of product.
  • ΔSm(CO2,g) is the molar entropy of CO2(g).

The value of ΔSm(CO2,g) is 213.74JK1mol1.

Substitute the value of ΔSm(CO2,g) in equation (5).

  ΔS°(products)=(1mol)×(213.74JK1mol1)=213.74JK1

The value of ΔS°(reactants) is 300.22JK1.

The value of ΔS°(products) is 213.74JK1.

Substitute the value of ΔS°(reactants) and ΔS°(products) in equation (3).

    ΔS°=213.74JK1300.22JK1=86.48JK1

The obtained standard reaction entropy of the given reaction is negative, which indicates that the products are less disordered as compared to the reactants.

Thus, the standard reaction entropy for the oxidation of 1.00molCO(g) at 25°C is -86.48JK-1_.

(c)

Interpretation Introduction

Interpretation:

The standard reaction entropy for the decomposition of 1.00mol calcite at 25°C has to be determined.

Concept Introduction:

Same as part (a).

(c)

Expert Solution
Check Mark

Answer to Problem 4H.11E

The standard reaction entropy for the decomposition of 1.00mol calcite at 25°C is +160.64JK-1_.

Explanation of Solution

The balanced chemical reaction representing the decomposition of 1.00mol calcite is shown below.

  CaCO3(s)CaO(s)+CO2(g)

The total entropy of reactants of the given reaction is calculated by the relation shown below.

    ΔS°(reactants)=(1mol)ΔSm(CaCO3,s)        (6)

Where,

  • ΔS°(reactants) is total entropy of reactants.
  • ΔSm(CaCO3,s) is the molar entropy of CaCO3(s).

The value of ΔSm(CaCO3,s) is 92.9JK1mol1.

Substitute the value of ΔSm(CaCO3,s) in equation (6).

  ΔS°(reactants)=(1mol)×(92.9JK1mol1)=92.9JK1

The total entropy of products of the given reaction is calculated by the relation shown below.

    ΔS°(products)=(1mol)ΔSm(CaO,s)+(1mol)ΔSm(CO2,g)        (7)

Where,

  • ΔS°(products) is total entropy of product.
  • ΔSm(CaO,s) is the molar entropy of CaO(s).
  • ΔSm(CO2,g) is the molar entropy of CO2(g).

The value of ΔSm(CaO,s) is 39.8JK1mol1.

The value of ΔSm(CO2,g) is 213.74JK1mol1.

Substitute the value of ΔSm(CaO,s) and ΔSm(CO2,g) in equation (7).

  ΔS°(products)=(1mol)×(39.8JK1mol1)+(1mol)×(213.74JK1mol1)=39.8JK1+213.74JK1=253.54JK1

The value of ΔS°(reactants) is 92.9JK1.

The value of ΔS°(products) is 253.54JK1.

Substitute the value of ΔS°(reactants) and ΔS°(products) in equation (3).

    ΔS°=253.54JK192.9JK1=+160.64JK1

The obtained standard reaction entropy of the given reaction is positive, which indicates that the products are more disordered as compared to the reactants.

Thus, the standard reaction entropy for the decomposition of 1.00mol calcite at 25°C is +160.64JK-1_.

(d)

Interpretation Introduction

Interpretation:

The standard reaction entropy for the decomposition of potassium chlorate at 25°C has to be determined.

Concept Introduction:

Same as part (a).

(d)

Expert Solution
Check Mark

Answer to Problem 4H.11E

The standard reaction entropy for the decomposition of potassium chlorate at 25°C is -36.29JK-1_.

Explanation of Solution

The balanced chemical reaction representing the decomposition of potassium chlorate is shown below.

  4KClO3(s)3KClO4(s)+KCl(s)

The total entropy of reactants of the given reaction is calculated by the relation shown below.

    ΔS°(reactants)=(4mol)ΔSm(KClO3,s)        (8)

Where,

  • ΔS°(reactants) is total entropy of reactants.
  • ΔSm(KClO3,s) is the molar entropy of KClO3(s).

The value of ΔSm(KClO3,s) is 142.97JK1mol1.

Substitute the value of ΔSm(KClO3,s) in equation (8).

  ΔS°(reactants)=(4mol)×(142.97JK1mol1)=571.88JK1

The total entropy of products of the given reaction is calculated by the relation shown below.

    ΔS°(products)=(3mol)ΔSm(KClO4,s)+(1mol)ΔSm(KCl,s)        (9)

Where,

  • ΔS°(products) is total entropy of product.
  • ΔSm(KClO4,s) is the molar entropy of KClO4(s).
  • ΔSm(KCl,s) is the molar entropy of KCl(s).

The value of ΔSm(KClO4,s) is 151.0JK1mol1.

The value of ΔSm(KCl,s) is 82.59JK1mol1.

Substitute the value of ΔSm(KClO4,s) and ΔSm(KCl,s) in equation (9).

  ΔS°(products)=(3mol)×(151.0JK1mol1)+(1mol)×(82.59JK1mol1)=453.0JK1+82.59JK1=535.59JK1

The value of ΔS°(reactants) is 571.88JK1.

The value of ΔS°(products) is 535.59JK1.

Substitute the value of ΔS°(reactants) and ΔS°(products) in equation (3).

    ΔS°=535.59JK1571.88JK1=36.29JK1

The obtained standard reaction entropy of the given reaction is negative, which indicates that the products are less disordered as compared to the reactants.

Thus, the standard reaction entropy for the decomposition of potassium chlorate at 25°C is -36.29JK-1_.

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Chapter 4 Solutions

Chemical Principles: The Quest for Insight

Ch. 4 - Prob. 4A.3ECh. 4 - Prob. 4A.4ECh. 4 - Prob. 4A.5ECh. 4 - Prob. 4A.6ECh. 4 - Prob. 4A.7ECh. 4 - Prob. 4A.8ECh. 4 - Prob. 4A.9ECh. 4 - Prob. 4A.10ECh. 4 - Prob. 4A.11ECh. 4 - Prob. 4A.12ECh. 4 - Prob. 4A.13ECh. 4 - Prob. 4A.14ECh. 4 - Prob. 4B.1ASTCh. 4 - Prob. 4B.1BSTCh. 4 - Prob. 4B.2ASTCh. 4 - Prob. 4B.2BSTCh. 4 - Prob. 4B.3ASTCh. 4 - Prob. 4B.3BSTCh. 4 - Prob. 4B.1ECh. 4 - Prob. 4B.2ECh. 4 - Prob. 4B.3ECh. 4 - Prob. 4B.4ECh. 4 - Prob. 4B.5ECh. 4 - Prob. 4B.6ECh. 4 - Prob. 4B.7ECh. 4 - Prob. 4B.8ECh. 4 - Prob. 4B.9ECh. 4 - Prob. 4B.10ECh. 4 - Prob. 4B.11ECh. 4 - Prob. 4B.12ECh. 4 - Prob. 4B.13ECh. 4 - Prob. 4B.14ECh. 4 - Prob. 4B.15ECh. 4 - Prob. 4B.16ECh. 4 - Prob. 4C.1ASTCh. 4 - Prob. 4C.1BSTCh. 4 - Prob. 4C.2ASTCh. 4 - Prob. 4C.2BSTCh. 4 - Prob. 4C.3ASTCh. 4 - Prob. 4C.3BSTCh. 4 - Prob. 4C.4ASTCh. 4 - Prob. 4C.4BSTCh. 4 - Prob. 4C.1ECh. 4 - Prob. 4C.2ECh. 4 - Prob. 4C.3ECh. 4 - Prob. 4C.4ECh. 4 - Prob. 4C.5ECh. 4 - Prob. 4C.6ECh. 4 - Prob. 4C.7ECh. 4 - Prob. 4C.8ECh. 4 - Prob. 4C.9ECh. 4 - Prob. 4C.10ECh. 4 - Prob. 4C.11ECh. 4 - Prob. 4C.12ECh. 4 - Prob. 4C.13ECh. 4 - Prob. 4C.14ECh. 4 - Prob. 4C.15ECh. 4 - Prob. 4C.16ECh. 4 - Prob. 4D.1ASTCh. 4 - Prob. 4D.1BSTCh. 4 - Prob. 4D.2ASTCh. 4 - Prob. 4D.2BSTCh. 4 - Prob. 4D.3ASTCh. 4 - Prob. 4D.3BSTCh. 4 - Prob. 4D.4ASTCh. 4 - Prob. 4D.4BSTCh. 4 - Prob. 4D.5ASTCh. 4 - Prob. 4D.5BSTCh. 4 - Prob. 4D.6ASTCh. 4 - Prob. 4D.6BSTCh. 4 - Prob. 4D.7ASTCh. 4 - Prob. 4D.7BSTCh. 4 - Prob. 4D.1ECh. 4 - Prob. 4D.2ECh. 4 - Prob. 4D.3ECh. 4 - Prob. 4D.4ECh. 4 - Prob. 4D.5ECh. 4 - Prob. 4D.6ECh. 4 - Prob. 4D.7ECh. 4 - Prob. 4D.8ECh. 4 - Prob. 4D.10ECh. 4 - Prob. 4D.11ECh. 4 - Prob. 4D.13ECh. 4 - Prob. 4D.14ECh. 4 - Prob. 4D.15ECh. 4 - Prob. 4D.16ECh. 4 - Prob. 4D.17ECh. 4 - Prob. 4D.18ECh. 4 - Prob. 4D.19ECh. 4 - Prob. 4D.20ECh. 4 - Prob. 4D.21ECh. 4 - Prob. 4D.22ECh. 4 - Prob. 4D.23ECh. 4 - Prob. 4D.24ECh. 4 - Prob. 4D.25ECh. 4 - Prob. 4D.26ECh. 4 - Prob. 4D.29ECh. 4 - Prob. 4D.30ECh. 4 - Prob. 4E.1ASTCh. 4 - Prob. 4E.1BSTCh. 4 - Prob. 4E.2ASTCh. 4 - Prob. 4E.2BSTCh. 4 - Prob. 4E.5ECh. 4 - Prob. 4E.6ECh. 4 - Prob. 4E.7ECh. 4 - Prob. 4E.8ECh. 4 - Prob. 4E.9ECh. 4 - Prob. 4E.10ECh. 4 - Prob. 4F.1ASTCh. 4 - Prob. 4F.1BSTCh. 4 - Prob. 4F.2ASTCh. 4 - Prob. 4F.2BSTCh. 4 - Prob. 4F.3ASTCh. 4 - Prob. 4F.3BSTCh. 4 - Prob. 4F.4ASTCh. 4 - Prob. 4F.4BSTCh. 4 - Prob. 4F.5ASTCh. 4 - Prob. 4F.5BSTCh. 4 - Prob. 4F.6ASTCh. 4 - Prob. 4F.6BSTCh. 4 - Prob. 4F.7ASTCh. 4 - Prob. 4F.7BSTCh. 4 - Prob. 4F.8ASTCh. 4 - Prob. 4F.8BSTCh. 4 - Prob. 4F.9ASTCh. 4 - Prob. 4F.9BSTCh. 4 - Prob. 4F.1ECh. 4 - Prob. 4F.2ECh. 4 - Prob. 4F.3ECh. 4 - Prob. 4F.4ECh. 4 - Prob. 4F.5ECh. 4 - Prob. 4F.6ECh. 4 - Prob. 4F.7ECh. 4 - Prob. 4F.9ECh. 4 - Prob. 4F.10ECh. 4 - Prob. 4F.11ECh. 4 - Prob. 4F.12ECh. 4 - Prob. 4F.13ECh. 4 - Prob. 4F.14ECh. 4 - Prob. 4F.15ECh. 4 - Prob. 4F.16ECh. 4 - Prob. 4F.17ECh. 4 - Prob. 4G.1ASTCh. 4 - Prob. 4G.1BSTCh. 4 - Prob. 4G.2ASTCh. 4 - Prob. 4G.2BSTCh. 4 - Prob. 4G.1ECh. 4 - Prob. 4G.2ECh. 4 - Prob. 4G.3ECh. 4 - Prob. 4G.5ECh. 4 - Prob. 4G.7ECh. 4 - Prob. 4G.8ECh. 4 - Prob. 4G.9ECh. 4 - Prob. 4G.10ECh. 4 - Prob. 4H.1ASTCh. 4 - Prob. 4H.1BSTCh. 4 - Prob. 4H.2ASTCh. 4 - Prob. 4H.2BSTCh. 4 - Prob. 4H.1ECh. 4 - Prob. 4H.2ECh. 4 - Prob. 4H.3ECh. 4 - Prob. 4H.4ECh. 4 - Prob. 4H.5ECh. 4 - Prob. 4H.6ECh. 4 - Prob. 4H.7ECh. 4 - Prob. 4H.8ECh. 4 - Prob. 4H.9ECh. 4 - Prob. 4H.10ECh. 4 - Prob. 4H.11ECh. 4 - Prob. 4I.1ASTCh. 4 - Prob. 4I.1BSTCh. 4 - Prob. 4I.2ASTCh. 4 - Prob. 4I.2BSTCh. 4 - Prob. 4I.3ASTCh. 4 - Prob. 4I.3BSTCh. 4 - Prob. 4I.4ASTCh. 4 - Prob. 4I.4BSTCh. 4 - Prob. 4I.1ECh. 4 - Prob. 4I.2ECh. 4 - Prob. 4I.3ECh. 4 - Prob. 4I.4ECh. 4 - Prob. 4I.5ECh. 4 - Prob. 4I.6ECh. 4 - Prob. 4I.7ECh. 4 - Prob. 4I.8ECh. 4 - Prob. 4I.9ECh. 4 - Prob. 4I.10ECh. 4 - Prob. 4I.11ECh. 4 - Prob. 4I.12ECh. 4 - Prob. 4J.1ASTCh. 4 - Prob. 4J.1BSTCh. 4 - Prob. 4J.2ASTCh. 4 - Prob. 4J.2BSTCh. 4 - Prob. 4J.3ASTCh. 4 - Prob. 4J.3BSTCh. 4 - Prob. 4J.4ASTCh. 4 - Prob. 4J.4BSTCh. 4 - Prob. 4J.5ASTCh. 4 - Prob. 4J.5BSTCh. 4 - Prob. 4J.6ASTCh. 4 - Prob. 4J.6BSTCh. 4 - Prob. 4J.1ECh. 4 - Prob. 4J.2ECh. 4 - Prob. 4J.3ECh. 4 - Prob. 4J.4ECh. 4 - Prob. 4J.5ECh. 4 - Prob. 4J.6ECh. 4 - Prob. 4J.7ECh. 4 - Prob. 4J.8ECh. 4 - Prob. 4J.9ECh. 4 - Prob. 4J.11ECh. 4 - Prob. 4J.12ECh. 4 - Prob. 4J.13ECh. 4 - Prob. 4J.14ECh. 4 - Prob. 4J.15ECh. 4 - Prob. 4J.16ECh. 4 - Prob. 4.8ECh. 4 - Prob. 4.14ECh. 4 - Prob. 4.16ECh. 4 - Prob. 4.19ECh. 4 - Prob. 4.20ECh. 4 - Prob. 4.21ECh. 4 - Prob. 4.23ECh. 4 - Prob. 4.25ECh. 4 - Prob. 4.27ECh. 4 - Prob. 4.28ECh. 4 - Prob. 4.29ECh. 4 - Prob. 4.30ECh. 4 - Prob. 4.31ECh. 4 - Prob. 4.32ECh. 4 - Prob. 4.33ECh. 4 - Prob. 4.34ECh. 4 - Prob. 4.35ECh. 4 - Prob. 4.36ECh. 4 - Prob. 4.37ECh. 4 - Prob. 4.39ECh. 4 - Prob. 4.40ECh. 4 - Prob. 4.41ECh. 4 - Prob. 4.45ECh. 4 - Prob. 4.46ECh. 4 - Prob. 4.48ECh. 4 - Prob. 4.49ECh. 4 - Prob. 4.53ECh. 4 - Prob. 4.57ECh. 4 - Prob. 4.59E
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Solutions: Crash Course Chemistry #27; Author: Crash Course;https://www.youtube.com/watch?v=9h2f1Bjr0p4;License: Standard YouTube License, CC-BY