Chemistry Principles And Practice
Chemistry Principles And Practice
3rd Edition
ISBN: 9781305295803
Author: David Reger; Scott Ball; Daniel Goode
Publisher: Cengage Learning
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Chapter 5, Problem 5.80QE

(a)

Interpretation Introduction

Interpretation:

Enthalpy change for the photosynthesis of glucose should be calculated and has to be labelled as endothermic or exothermic.

Concept introduction:

Enthalpy(H): It is the total amount of heat in a particular system.

The value of standard enthalpy change ΔHο of the given reaction is calculated by the formula,

  ΔHrxn=npΔHfο(products)nrΔHfο(reactants)

Where,

ΔHfο is the standard enthalpies of formation.

n is the number of moles.

ΔH in a reaction is positive then it is an endothermic reaction whereas the value obtained for ΔH is negative it is an exothermic reaction.

(a)

Expert Solution
Check Mark

Answer to Problem 5.80QE

Enthalpy change is 2808kJ and the photosynthesis of glucose is an endothermic reaction.

Explanation of Solution

The balanced equation for the photosynthesis of glucose is given as:

  6 CO2(g)+ 6 H2O(l)C6H12O6(s) + 6 O2(g)

Standard enthalpy of formation values is given below,

  ΔHfoof CO2(g)=393.51kJ/molΔHfoof H2O(l)=285.83kJ/molΔHfoof C6H12O6(s)=1268kJ/molΔHfoofO2(g)=0kJ/mol

Change in enthalpy can be calculated by the equation:

  ΔHrxn=npΔHfο(products)nrΔHfο(reactants)

Substitute the values as follows,

  ΔHrxno=[(1 mol×1268kJ/mol)+(6 mol×0kJ/mol)] [(6 mol×393.51kJ/mol)+(6 mol×285.83kJ/mol)]=2808kJ

The sign of enthalpy change is positive. Hence, it is an endothermic reaction.

(b)

Interpretation Introduction

Interpretation:

Enthalpy change for the reduction of iron (III) oxide with carbon should be calculated and has to be labelled as endothermic or exothermic.

Concept introduction:

Refer to (a).

(b)

Expert Solution
Check Mark

Answer to Problem 5.80QE

Enthalpy change is 467.9kJ and the reduction of iron (III) oxide with carbon is an endothermic reaction.

Explanation of Solution

The balanced equation for the reduction of iron (III) oxide with carbon is given as:

  2 Fe2O3(s) + 3 C(s)4 Fe(s)+2CO2(g).

Standard enthalpy of formation values is given below,

  ΔHfoof Fe2O3(s)=824.2 kJ/molΔHfoof C(s)=0kJ/molΔHfoof CO2(g)=393.51kJ/molΔHfoofFe(s)=0kJ/mol

Change in enthalpy can be calculated by the equation:

  ΔHrxn=npΔHfο(products)nrΔHfο(reactants)

Substitute the values as follows,

  ΔHrxno=[(4 mol×0kJ/mol)+(3 mol×393.51kJ/mol)] [(3 mol×0kJ/mol)+(2 mol×824.2kJ/mol)]=467.9kJ

The sign of enthalpy change is positive. Hence, it is an endothermic reaction.

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Chapter 5 Solutions

Chemistry Principles And Practice

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