EBK CHEMISTRY
EBK CHEMISTRY
10th Edition
ISBN: 8220103600606
Author: ZUMDAHL
Publisher: CENGAGE L
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Chapter 6, Problem 54E

For the following reactions at constant pressure, predict if ΔH > ΔE, ΔH < ΔE, or ΔH = ΔE.

a. 2HF(g) → H2(g) + F2(g)

b. N2(g) + 3H2(g) → 2NH3(g)

c. 4NH3(g) + 5O2(g) → 4NO(g) + 6H2O(g)

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

For the given set of reactions it should be predicted that which is greater either ΔE or ΔH.

Concept Introduction:

Enthalpy change: It is defined as the amount of heat released or absorbed by the chemical reaction at constant pressure conditions. ΔH = ΣnPΣHf(P)ΣnRΣHf(R).

Considering the following equation we can identify whether ΔE or ΔH is greater for the given reaction.

ΔH = ΔE+ΔngRTwhere, Δng= number of gaseous products - number of gaseous reactants.ΔH=Enthaply changeΔE=Energy changeR=Gas constantT=Temperature

Enthalpy change of combustion: It is the heat energy change involved when one mole of substance gets burned in pressure of oxygen under standard conditions.

Standard enthalpy of formation: It is the heat required when one mole of substance formed from its pure elements in standard state.

Hess law: It states that the total enthalpy of the reaction is equal to the sum of the enthalpy change for individual steps involved in the reaction.

To predict: Whether ΔH or  ΔE greater for the given set of reactions.

Answer to Problem 54E

For the given reaction ΔH = ΔE.

Explanation of Solution

Analysing the given reaction shows that there are two gaseous reactants that gives rise to 2 gaseous products therefore, Δng is calculated as follows,

Δng= number of gaseous products - number of gaseous reactants=2-2=0

For the given reaction Δng is 0 hence using the given equation ΔH = ΔE+ΔngRT we found that ΔH = ΔE.

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

For the given set of reactions it should be predicted that which is greater either ΔE or ΔH.

Concept Introduction:

Enthalpy change: It is defined as the amount of heat released or absorbed by the chemical reaction at constant pressure conditions. ΔH = ΣnPΣHf(P)ΣnRΣHf(R).

Considering the following equation we can identify whether ΔE or ΔH is greater for the given reaction.

ΔH = ΔE+ΔngRTwhere, Δng= number of gaseous products - number of gaseous reactants.ΔH=Enthaply changeΔE=Energy changeR=Gas constantT=Temperature

Enthalpy change of combustion: It is the heat energy change involved when one mole of substance gets burned in pressure of oxygen under standard conditions.

Standard enthalpy of formation: It is the heat required when one mole of substance formed from its pure elements in standard state.

Hess law: It states that the total enthalpy of the reaction is equal to the sum of the enthalpy change for individual steps involved in the reaction.

To predict: Whether ΔH or  ΔE greater for the given set of reactions.

Answer to Problem 54E

For the given reaction ΔH < ΔE.

Explanation of Solution

Analysing the given reaction shows that there are 4 gaseous reactants that gives rise to 2 gaseous products therefore, Δng is calculated as follows,

Δng= number of gaseous products - number of gaseous reactants=2-4=2

For the given reaction Δng is -2 hence using the given equation ΔH = ΔE+ΔngRT we found that ΔH < ΔE.

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

For the given set of reactions it should be predicted that which is greater either ΔE or ΔH.

Concept Introduction:

Enthalpy change: It is defined as the amount of heat released or absorbed by the chemical reaction at constant pressure conditions. ΔH = ΣnPΣHf(P)ΣnRΣHf(R).

Considering the following equation we can identify whether ΔE or ΔH is greater for the given reaction.

ΔH = ΔE+ΔngRTwhere, Δng= number of gaseous products - number of gaseous reactants.ΔH=Enthaply changeΔE=Energy changeR=Gas constantT=Temperature

Enthalpy change of combustion: It is the heat energy change involved when one mole of substance gets burned in pressure of oxygen under standard conditions.

Standard enthalpy of formation: It is the heat required when one mole of substance formed from its pure elements in standard state.

Hess law: It states that the total enthalpy of the reaction is equal to the sum of the enthalpy change for individual steps involved in the reaction.

To predict: Whether ΔH or  ΔE greater for the given set of reactions.

Answer to Problem 54E

For the given reaction ΔH >ΔE.

Explanation of Solution

Analysing the given reaction shows that there are 9 gaseous reactants that gives rise to 10 gaseous products therefore, Δng is calculated as follows,

Δng= number of gaseous products - number of gaseous reactants=10-9=1

For the given reaction Δng is -2 hence using the given equation ΔH = ΔE+ΔngRT we found that ΔH >ΔE.

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Chapter 6 Solutions

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