Chapter 19, Problem 19.114QA

Interpretation Introduction

To calculate:

 $∆H_{rxn}^0$ for  the given reactions of methanogenic bacteria.

Answer to Problem 19.114QA

Solution:

a) $∆H_{rxn}^0=-252.9 kJ$

b) $∆H_{rxn}^0=-234.7 kJ$

Explanation of Solution

1) Concept:

We are given two balanced reactions of methanogenic bacteria and asked to find the $∆H{°}_{rxn}$ for each given reaction. We can find the standard enthalpy formation values for $C{H}_4\left(g\right), C{O}_2\left(g\right),C{H}_{3}OH \left(l\right), H_2\left(g\right)and H_{2}O\left(l\right)\_ can find out the standard enthalpy formation values for$ from the Appendix and find the standard enthalpy for the reaction using the following equation:

$∆H{°}_{rxn}= \sum n_{products}∆H_{f, products}^0- \sum n_{reactants}∆H_{f, reactants}^0$

2) Formula:

$∆H{°}_{rxn}= \sum n_{products}∆H_{f, products}^0- \sum n_{reactants}∆H_{f, reactants}^0$

3) Given:

i) $4H_2\left(g\right)+C{O}_2\left(g\right)\to C{H}_4\left(g\right)+2H_{2}O\left(l\right)$   

ii) $4C{H}_{3}OH\left(l\right)\to 3C{H}_4\left(g\right)+C{O}_2\left(g\right)+2H_{2}O\left(l\right)$

4) Calculations:

Values of standard enthalpies of formation of $H_2\left(g\right), C{O}_2\left(g\right), C{H}_4\left(g\right),$

$H_{2}O\left(g\right), C{H}_{3}OH\left(l\right)$ are taken from Appendix $4$ are:

	$∆{\mathit{H}}_{\mathit{f}}^0(\mathit{k}\mathit{J}/\mathit{m}\mathit{o}\mathit{l})$
$C{H}_{3}OH \left(l\right)$	$-238.7$
$H_2\left(g\right)$	$0.0$
$C{O}_2\left(g\right)$	$-393.5$
$H_{2}O \left(l\right)$	$-285.8$
$C{H}_4\left(g\right)$	$-74.8$

a) $∆H{°}_{rxn}$ for reaction: $4H_2\left(g\right)+C{O}_2\left(g\right)\to C{H}_4\left(g\right)+2H_{2}O\left(l\right)$

$∆H{°}_{rxn}= \sum n_{products}∆H_{f, products}^0- \sum n_{reactants}∆H_{f, reactants}^0$

$∆H{°}_{rxn}=\left[\left(1 mol C{H}_4\left(g\right)\times ∆H_{C{H}_4\left(g\right)}^0\right)+\left(2 mol H_{2}O\left(l\right)\times ∆H_{H_{2}O\left(l\right)}^0\right)\right]-\left[\left(4 mol H_2\times ∆H_{H_2\left(g\right)}^0\right)+\left(1 mol C{O}_2\left(g\right)\times ∆H_{C{O}_2\left(g\right)}^0\right)\right]$

$∆H{°}_{rxn}=\left[\left(1 mol C{H}_4\left(g\right)\times \left(-74.8\frac{kJ}{mol}\right)\right)+\left(2 mol H_{2}O\left(l\right)\times \left(-285.8\frac{kJ}{mol}\right)\right)\right]-\left[\left(4 mol H_2\times \left(0.0\frac{kJ}{mol}\right)\right)+\left(1 mol C{O}_2\left(g\right)\times \left(-393.5\frac{kJ}{mol}\right)\right)\right]$

$∆H{°}_{rxn}=\left[\left(-74.8 kJ\right)+(-571.6 kJ)\right]-\left(-393.5 kJ\right)=-252.9 kJ$

b) $∆H{°}_{rxn}$ for reaction: $4C{H}_{3}OH\left(l\right)\to 3C{H}_4\left(g\right)+C{O}_2\left(g\right)+2H_{2}O\left(l\right)$

$∆H{°}_{rxn}= \sum n_{products}∆H_{f, products}^0- \sum n_{reactants}∆H_{f, reactants}^0$

$∆H{°}_{rxn}=\left[\begin{array}{c}\left(3 mol C{H}_4\left(g\right)\times ∆H_{C{H}_4\left(g\right)}^0\right)+\\ \left(1 mol C{O}_2\left(g\right)\times ∆H_{C{O}_2\left(g\right)}^0\right)+\left(2 mol H_{2}O\left(l\right)\times ∆H_{H_{2}O\left(l\right)}^0\right)\end{array}\right]-\left(4 mol C{H}_{3}OH\right(l)\times ∆H_{C{H}_{3}OH\left(l\right)}^0)$

$∆H{°}_{rxn}=\left[\begin{array}{c}\left(3 mol C{H}_4\left(g\right)\times \left(-74.8\frac{kJ}{mol}\right)\right)+\\ \left(1 mol C{O}_2\left(g\right)\times \left(-393.5\frac{kJ}{mol}\right)\right)+\left(2 mol H_{2}O\left(l\right)\times \left(-285.8\frac{kJ}{mol}\right)\right)\end{array}\right]-(4 mol C{H}_{3}OH\left(l\right)\times \left(-238.7\frac{kJ}{mol}\right))$

$∆H{°}_{rxn}=\left(-1189.5 kJ\right)-\left(-954.8 kJ\right)=-234.7 kJ$

Conclusion:

Using standard enthalpy values from Appendix 4, we calculated the enthalpy of reactions of methanogenic bacteria.