---
title: "The Energy of Reactions: Combustion and Bond Energies"
book: "School Chemistry — Grades 1 to 12"
subject: chemistry
language: en
chapter: 37
exercises: 15
source: https://one-course.com/books/chemistry/1/en/chapter/37-the-energy-of-reactions-combustion-and-bond-energies
license: CC-BY-NC-SA-4.0
credit: "One Chemistry Book, One Course (one-course.com)"
---

# Chapter 37 — The Energy of Reactions: Combustion and Bond Energies

Break the seal of a hand warmer and, a minute later, it is too hot to hold for long; squeeze a cold pack and it chills a sprained ankle; a city bus runs all day on hydrogen and leaves only water vapour behind it. Chemical transformations do not only turn substances into others: they release energy, or take it in. Where does that energy come from, and how much of it can a [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) give?

**You already know.**

In a [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete), a [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) made of carbon and hydrogen burns in dioxygen to give carbon dioxide and water ([Chapter 14](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#ch-g8-combustion-and-fuels)). A [covalent bond](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-covalent-bond) is a shared pair of [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus); [Lewis structures](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) show every bond of a [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) ([Chapter 24](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#ch-g10-lewis-and-shape)). The [amount of substance](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) is counted in [moles](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) ([Chapter 25](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#ch-g10-the-mole)).

![A hand warmer: a reaction inside the pouch releases heat.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/img-ede8647d25d6.jpg)

*A hand warmer: a reaction inside the pouch releases heat.*

## 37.1 Exothermic and endothermic transformations

**Definition 37.1 (Exothermic, endothermic).**

A transformation is *exothermic* if it releases energy to its surroundings, usually as heat: the surroundings warm up. It is *endothermic* if it takes in energy from its surroundings: they cool down, or the transformation needs heating to go on.

**Example 37.2 (Warm and cold).**

[Combustions](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) are [exothermic](#def-g11-reaction-energy-exothermic), and so is the slow reaction of iron powder with the dioxygen of the [air](https://one-course.com/books/chemistry/1/en/chapter/4-air-a-mixture-of-gases#def-g4-air-a-mixture-of-gases-air) inside a hand warmer. The dissolving of ammonium nitrate in water, used in cold packs, is [endothermic](#def-g11-reaction-energy-exothermic); so is the decomposition of limestone into quicklime and carbon dioxide, which takes place only in a very hot kiln.

![Energy diagrams. In an exothermic reaction the products hold less energy than the reactants, and the difference is released; in an endothermic one they hold more, and it must be supplied.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/fig-8fe97e845451.svg)

*Energy diagrams. In an [exothermic](#def-g11-reaction-energy-exothermic) reaction the products hold less energy than the [reactants](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reactant), and the difference is released; in an [endothermic](#def-g11-reaction-energy-exothermic) one they hold more, and it must be supplied.*

## 37.2 The energy released by a combustion

**Definition 37.3 (Molar energy of combustion).**

The *molar energy of combustion* $E_c$ of a [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) is the energy released by the [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of it, in $\mathrm{kJ}/\mathrm{mol}$, the water formed being liquid.

**Proposition 37.4 (Energy released by nnn moles).**

The [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of an amount $n$ of [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) releases the energy $Q = n \times E_c$. For methane, $E_c = 890.7\,\mathrm{kJ}/\mathrm{mol}$: [burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) $1.00\,\mathrm{mol}$ ($16.0\,\mathrm{g}$) of it releases about $891\,\mathrm{kJ}$.

**Proof.** Each [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) burnt releases $E_c$; $n$ [moles](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) release $n$ times more. ∎

**In the lab — Heating water with a spirit burner.**

A spirit burner of ethanol is weighed, then lit under a [metal](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-metal) can holding $200\,\mathrm{g}$ of water, with a thermometer in it. When the water has warmed by $25\,{}^{\circ}\mathrm{C}$, the flame is put out and the burner weighed again: it has lost $1.50\,\mathrm{g}$ of ethanol. The energy taken by the water is computed with the physics formula $Q = m\, c\, \Delta\theta$, where $c = 4.18\,\mathrm{J}/(\mathrm{g}\,{}^{\circ}\mathrm{C})$ is the specific heat of water. It is far below the energy the ethanol could release: much of the heat warms the [air](https://one-course.com/books/chemistry/1/en/chapter/4-air-a-mixture-of-gases#def-g4-air-a-mixture-of-gases-air), the can and the burner, and some of the ethanol burns incompletely.

![Measuring the energy given by a fuel: a spirit burner heats a can of water whose temperature rise is measured.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/fig-c9554717e165.svg)

*Measuring the energy given by a [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel): a spirit burner heats a can of water whose temperature rise is measured.*

**Example 37.5 (The spirit burner in numbers).**

The water received $Q = 200 \times 4.18 \times 25 = 2.09 \times 10^{4}\,\mathrm{J}$, that is $20.9\,\mathrm{kJ}$. The ethanol burnt, $1.50\,\mathrm{g}$, is $1.50 / 46.0 = 0.0326\,\mathrm{mol}$; with $E_c = 1367.6\,\mathrm{kJ}/\mathrm{mol}$ it could release $0.0326 \times 1367.6 = 44.6\,\mathrm{kJ}$. Only $20.9 / 44.6 \approx 47\,\%$ of it reached the water.

## 37.3 Bond energies

**Definition 37.6 (Bond energy).**

The *bond energy* of a [covalent bond](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-covalent-bond) is the energy needed to break one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of such bonds, the [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) and [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) being gases. Tables give average values, measured over many [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), in $\mathrm{kJ}/\mathrm{mol}$.

| bond | $\mathrm{kJ}/\mathrm{mol}$ | bond | $\mathrm{kJ}/\mathrm{mol}$ | bond | $\mathrm{kJ}/\mathrm{mol}$ |
| --- | --- | --- | --- | --- | --- |
| $\ce{H-H}$ | 436 | $\ce{C-C}$ | 345 | $\ce{O=O}$ | 498 |
| $\ce{C-H}$ | 415 | $\ce{C=C}$ | 611 | $\ce{N#N}$ | 946 |
| $\ce{N-H}$ | 390 | $\ce{C-O}$ | 350 | $\ce{Cl-Cl}$ | 243 |
| $\ce{O-H}$ | 464 | $\ce{C=O}$ | 741 | $\ce{H-Cl}$ | 432 |

*Average bond energies. Breaking a bond always costs energy; forming it gives the same energy back.*

![The combustion of methane as two imaginary steps, with average bond energies: breaking every bond, then forming the new ones. The estimate, -682\, kJ per mole of methane, is exothermic.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/fig-e0a643f20d67.svg)

*The [combustion](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) of methane as two imaginary steps, with average bond energies: breaking every bond, then forming the new ones. The estimate, $-682\,\mathrm{kJ}$ per [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of methane, is [exothermic](#def-g11-reaction-energy-exothermic).*

**Proposition 37.7 (Estimating a reaction energy).**

For a reaction between gases, the energy taken in, $E_r$ (negative if energy is released), is approximately

$$
E_r \approx \sum E(\text{bonds broken}) - \sum E(\text{bonds formed}) .
$$

If $E_r < 0$, more energy is released by forming the new bonds than is needed to break the old ones: the reaction is [exothermic](#def-g11-reaction-energy-exothermic).

**Proof.** Imagine the reaction in two steps: every bond of the [reactants](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reactant) is broken, which costs the first sum and leaves separate [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom); then the bonds of the products form, which gives back the second sum. The result is only an estimate, because tables give averages over many [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule). ∎

**Method 37.8 (Estimating a reaction energy from bond energies).**

1. Write the [balanced equation](https://one-course.com/books/chemistry/1/en/chapter/13-conservation-of-mass-and-balanced-equations#def-g8-balanced-equations-equation) and the [Lewis structure](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) of every [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) .
2. Count the bonds of each kind broken in the [reactants](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reactant) and formed in the products, with the coefficients.
3. Add up the energies of the bonds broken, subtract those of the bonds formed.
4. Conclude: a negative result means an [exothermic](#def-g11-reaction-energy-exothermic) reaction.

**Example 37.9 (Hydrogen and chlorine).**

For $\ce{H2 + Cl2 -> 2HCl}$: one $\ce{H-H}$ and one $\ce{Cl-Cl}$ broken, $436 + 243 = 679\,\mathrm{kJ}$; two $\ce{H-Cl}$ formed, $2 \times 432 =
864\,\mathrm{kJ}$. So $E_r \approx 679 - 864 = -185\,\mathrm{kJ}$ per [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of reaction: [exothermic](#def-g11-reaction-energy-exothermic).

**Remark 37.10 (Estimate and measurement).**

The measured energy released by [burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of methane is $890.7\,\mathrm{kJ}$, larger than the estimate. Three reasons: the $\ce{C=O}$ bonds of carbon dioxide are stronger than the average $\ce{C=O}$ of the table; the measured value is for liquid water, and condensing the water vapour releases more energy; and average bond energies are only averages. The bond-energy method gives the sign and the order of magnitude, not the exact value.

## 37.4 Comparing fuels

![Energy released by the complete combustion of one kilogram of five fuels (water formed liquid). Hydrogen gives by far the most per kilogram; ethanol, already partly “burnt” (it contains oxygen), the least.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/fig-36d4d561aed9.svg)

*Energy released by the [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of one kilogram of five [fuels](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) (water formed liquid). Hydrogen gives by far the most per kilogram; ethanol, already partly “burnt” (it contains oxygen), the least.*

**Example 37.11 (Carbon dioxide per megajoule).**

[Burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of methane releases $890.7\,\mathrm{kJ}$ and one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of carbon dioxide, $44.0\,\mathrm{g}$. For one megajoule, $1000\,\mathrm{kJ}$, it releases $44.0 \times 1000 / 890.7 = 49.4\,\mathrm{g}$ of carbon dioxide. Ethanol, with two [moles](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of carbon dioxide per $1367.6\,\mathrm{kJ}$, releases $88.0 \times 1000 / 1367.6 = 64.3\,\mathrm{g}$ per megajoule. Hydrogen releases none: its only product is water.

![A bus at a hydrogen station: its fuel releases only water.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/img-0d305d894882.jpg)

*A bus at a hydrogen station: its [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) releases only water.*

**Safety.**

![](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/fig-1664a80a99b8.svg)

![](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-reaction-energy/fig-0df833fa40ae.svg)

Ethanol is highly flammable and irritating to the eyes. A spirit burner is filled away from any flame, never refilled while hot, and used by the teacher on a heat-proof mat.

## 37.5 Exercises

**Exercise 37.1 ★.**

[Exothermic](#def-g11-reaction-energy-exothermic) or [endothermic](#def-g11-reaction-energy-exothermic): wood [burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning); ice melting; a cold pack being squeezed; a hand warmer heating up; a green leaf making sugar in sunlight?

**Solution of Exercise 37.1.**

Wood [burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning): [exothermic](#def-g11-reaction-energy-exothermic). Ice melting: [endothermic](#def-g11-reaction-energy-exothermic) (it takes heat from its surroundings, though it is not a [chemical reaction](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reaction)). Cold pack: [endothermic](#def-g11-reaction-energy-exothermic). Hand warmer: [exothermic](#def-g11-reaction-energy-exothermic). Making sugar in sunlight: [endothermic](#def-g11-reaction-energy-exothermic) (the energy comes from light).

**Exercise 37.2 ★.**

What energy does the [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of $3.0\,\mathrm{mol}$ of methane release?

**Solution of Exercise 37.2.**

$Q = 3.0 \times 890.7 = 2.7 \times 10^{3}\,\mathrm{kJ}$, about $2.7\,\mathrm{MJ}$.

**Exercise 37.3 ★.**

On the energy diagram of an [exothermic](#def-g11-reaction-energy-exothermic) reaction, which holds more energy, the [reactants](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reactant) or the products? Where does the difference go?

**Solution of Exercise 37.3.**

The [reactants](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reactant). The difference is released to the surroundings, mostly as heat.

**Exercise 37.4 ★.**

What energy does the [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of $100\,\mathrm{g}$ of ethanol release?

**Solution of Exercise 37.4.**

$n = 100 / 46.0 = 2.17\,\mathrm{mol}$; $Q = 2.17 \times 1367.6 =
2.97 \times 10^{3}\,\mathrm{kJ}$, about $3.0\,\mathrm{MJ}$.

**Exercise 37.5 ★.**

What is a [bond energy](#def-g11-reaction-energy-bond-energy)? Why does breaking a bond always cost energy?

**Solution of Exercise 37.5.**

The energy needed to break one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of these bonds, [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) and [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) being gases. The shared pair holds the two [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) together: pulling them apart works against that attraction, which takes energy.

**Exercise 37.6 ★★.**

Estimate, with bond energies, the energy of the reaction $\ce{2H2 + O2 -> 2H2O}$, all gases. Is it [exothermic](#def-g11-reaction-energy-exothermic)?

**Solution of Exercise 37.6.**

Broken: $2 \times 436 + 498 = 1370\,\mathrm{kJ}$; formed: $4 \times 464 = 1856\,\mathrm{kJ}$; $E_r \approx 1370 - 1856 =
-486\,\mathrm{kJ}$: [exothermic](#def-g11-reaction-energy-exothermic).

**Exercise 37.7 ★★.**

Estimate the energy of the [combustion](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) of ethanol, $\ce{C2H5OH + 3O2 ->
2CO2 + 3H2O}$, with bond energies (draw the [Lewis structure](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) of ethanol first), and compare with the measured $1367.6\,\mathrm{kJ}/\mathrm{mol}$.

**Solution of Exercise 37.7.**

Ethanol $\ce{CH3-CH2-O-H}$ has 5 $\ce{C-H}$, 1 $\ce{C-C}$, 1 $\ce{C-O}$ and 1 $\ce{O-H}$. Broken: $5 \times 415 + 345 + 350 + 464 + 3 \times 498 =
4728\,\mathrm{kJ}$. Formed: $4 \times 741 + 6 \times 464 = 5748\,\mathrm{kJ}$. $E_r \approx -1020\,\mathrm{kJ}$, about a quarter smaller in size than the measured $1367.6\,\mathrm{kJ}$.

**Exercise 37.8 ★★.**

Compute the energy released per kilogram of propane ($2219.2\,\mathrm{kJ}/\mathrm{mol}$) and of methane. Compare with the bar chart.

**Solution of Exercise 37.8.**

Propane: $2219.2 / 0.0440 = 5.04 \times 10^{4}\,\mathrm{kJ}/\mathrm{kg} = 50.4\,\mathrm{MJ}/\mathrm{kg}$. Methane: $890.7 / 0.0160 = 55.7\,\mathrm{MJ}/\mathrm{kg}$. Both as on the chart.

**Exercise 37.9 ★★.**

A gas cooker heats $1.50\,\mathrm{L}$ of water ($1500\,\mathrm{g}$) from $15\,{}^{\circ}\mathrm{C}$ to $100\,{}^{\circ}\mathrm{C}$. What energy does the water receive? What mass of methane is burnt if all the energy reached the water? If only half of it did?

**Solution of Exercise 37.9.**

$Q = 1500 \times 4.18 \times 85 = 5.33 \times 10^{5}\,\mathrm{J} = 533\,\mathrm{kJ}$; $n = 533 / 890.7 = 0.598\,\mathrm{mol}$, that is $0.598 \times 16.0 =
9.6\,\mathrm{g}$ of methane; with half the energy lost, $19\,\mathrm{g}$.

**Exercise 37.10 ★★.**

Using the bar chart, rank the [fuels](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) by energy per kilogram. What mass of hydrogen gives the same energy as $1.0\,\mathrm{kg}$ of octane?

**Solution of Exercise 37.10.**

Hydrogen > methane > propane > octane > ethanol. $48.0 / 142.9 = 0.34\,\mathrm{kg}$ of hydrogen.

**Exercise 37.11 ★★.**

Estimate the energy of $\ce{N2 + 3H2 -> 2NH3}$, all gases. [Exothermic](#def-g11-reaction-energy-exothermic) or [endothermic](#def-g11-reaction-energy-exothermic)?

**Solution of Exercise 37.11.**

Broken: $946 + 3 \times 436 = 2254\,\mathrm{kJ}$; formed: $6 \times 390 = 2340\,\mathrm{kJ}$; $E_r \approx -86\,\mathrm{kJ}$: slightly [exothermic](#def-g11-reaction-energy-exothermic).

**Exercise 37.12 ★★★.**

In a spirit-burner experiment, $250\,\mathrm{g}$ of water warm by $20\,{}^{\circ}\mathrm{C}$ while $1.20\,\mathrm{g}$ of ethanol burn. Compute the energy received by the water, the energy the ethanol could release, and the efficiency of the heating. Name three causes of the losses.

**Solution of Exercise 37.12.**

Water: $250 \times 4.18 \times 20 = 2.09 \times 10^{4}\,\mathrm{J} = 20.9\,\mathrm{kJ}$. Ethanol: $1.20 / 46.0 = 0.0261\,\mathrm{mol}$, which could release $0.0261 \times 1367.6 = 35.7\,\mathrm{kJ}$. Efficiency $20.9 / 35.7 \approx 59\,\%$. Losses: heat carried away by the [air](https://one-course.com/books/chemistry/1/en/chapter/4-air-a-mixture-of-gases#def-g4-air-a-mixture-of-gases-air), heat warming the can and the stand, [incomplete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) (soot), some ethanol [evaporating](https://one-course.com/books/chemistry/1/en/chapter/3-separating-mixtures#def-g3-separating-mixtures-evaporate) unburnt.

**Exercise 37.13 ★★★.**

Octane releases $5470\,\mathrm{kJ}/\mathrm{mol}$ and propane $2219.2\,\mathrm{kJ}/\mathrm{mol}$. Write their [combustion](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) equations and compute the mass of carbon dioxide each releases per megajoule. Compare with methane, $49.4\,\mathrm{g}$.

**Solution of Exercise 37.13.**

$\ce{2C8H18 + 25O2 -> 16CO2 + 18H2O}$: 8 [moles](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) of carbon dioxide, $352\,\mathrm{g}$, per $5470\,\mathrm{kJ}$, so $352 / 5.470 = 64.4\,\mathrm{g}$ per megajoule. $\ce{C3H8 + 5O2 -> 3CO2 + 4H2O}$: $132\,\mathrm{g}$ per $2219.2\,\mathrm{kJ}$, so $59.5\,\mathrm{g}$ per megajoule. Methane, with $49.4\,\mathrm{g}$, releases the least.

**Exercise 37.14 ★★★.**

For both methane and ethanol, the bond-energy estimate is smaller than the measured energy released. Give the reasons, and explain why the estimate is still useful.

**Solution of Exercise 37.14.**

The table gives average bond energies, while the $\ce{C=O}$ bonds of carbon dioxide are stronger than average; the measured values are for liquid water, whose condensation releases more energy than the gas reaction; and the method treats every bond as independent of its neighbours. The estimate is still useful: it gives the right sign ([exothermic](#def-g11-reaction-energy-exothermic)) and the right order of magnitude without any measurement.

**Exercise 37.15 ★★★.**

Estimate the energy of $\ce{2H2O -> 2H2 + O2}$, all gases. Why must energy be supplied (for example as electricity) to make hydrogen from water? Explain why hydrogen is called a way of *storing* energy rather than a source of energy.

**Solution of Exercise 37.15.**

Broken: $4 \times 464 = 1856\,\mathrm{kJ}$; formed: $2 \times 436 + 498 =
1370\,\mathrm{kJ}$; $E_r \approx +486\,\mathrm{kJ}$: [endothermic](#def-g11-reaction-energy-exothermic), so energy must be supplied. [Burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) the hydrogen later gives this energy back: hydrogen stores energy produced elsewhere, it does not create any.

## 37.6 Problem: Which Fuel for the City Bus?

**Problem 37.1.**

Weekend problem — methane, ethanol, octane or hydrogen: which gives the most energy per kilogram, and how much carbon dioxide per megajoule?

A city compares four [fuels](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) for its buses: methane (natural gas), ethanol, octane (for petrol) and hydrogen. The energies released by the [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of one [mole](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-amount) are: methane $890.7\,\mathrm{kJ}$, ethanol $1367.6\,\mathrm{kJ}$, octane $5470\,\mathrm{kJ}$, hydrogen $285.8\,\mathrm{kJ}$, the water being formed liquid.

**Part I — [Combustion](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) equations.**

1. Write the equation of the [complete combustion](https://one-course.com/books/chemistry/1/en/chapter/14-combustion-fuels-products-and-greenhouse-gases#def-g8-combustion-and-fuels-complete) of methane.
2. Of ethanol, $\ce{C2H6O}$ .
3. Of octane, $\ce{C8H18}$ .
4. Of hydrogen.
5. Which [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) releases no carbon dioxide?

**Part II — Energy per kilogram.**

6. Compute the molar masses of the four [fuels](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) .
7. Compute the energy released per kilogram for each, in $\mathrm{MJ}/\mathrm{kg}$ .
8. Rank the [fuels](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) .
9. Hydrogen wins by far. Why is it still difficult to carry on a bus? (Think of its state at room temperature.)

**Part III — Estimating with bond energies.**

10. Draw the [Lewis structures](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) of the [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) of the [combustion](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) of methane, and count the bonds broken and formed.
11. Compute the energy needed to break the bonds.
12. Compute the energy released by forming the new bonds.
13. Deduce the estimate of $E_r$ , and compare with the measured value: relative difference?
14. Give two reasons for the difference.

**Part IV — Carbon dioxide per megajoule.**

15. What amount of methane must burn to release $1\,\mathrm{MJ}$ ?
16. What mass of carbon dioxide does it release?
17. Same question for ethanol and octane.
18. Which carbon [fuel](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-fuel) releases the least carbon dioxide for the same energy? Why (compare the numbers of C and H [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) )?
19. Hydrogen releases none when it burns. On what does its true benefit for the climate depend?
20. State the final answer: what mass of carbon dioxide does methane release per megajoule?

**Solution of Problem 37.1.**

**1.** $\ce{CH4 + 2O2 -> CO2 + 2H2O}$.

**2.** $\ce{C2H6O + 3O2 -> 2CO2 + 3H2O}$.

**3.** $\ce{2C8H18 + 25O2 -> 16CO2 + 18H2O}$.

**4.** $\ce{2H2 + O2 -> 2H2O}$.

**5.** Hydrogen.

**6.** $16.0\,\mathrm{g}/\mathrm{mol}$, $46.0\,\mathrm{g}/\mathrm{mol}$, $114.0\,\mathrm{g}/\mathrm{mol}$, $2.0\,\mathrm{g}/\mathrm{mol}$.

**7.** In $\mathrm{kJ}$ per $\mathrm{kg}$, then $\mathrm{MJ}/\mathrm{kg}$: methane $890.7 / 0.0160$, $55.7\,\mathrm{MJ}/\mathrm{kg}$; ethanol $1367.6 / 0.0460$, $29.7\,\mathrm{MJ}/\mathrm{kg}$; octane $5470 / 0.1140$, $48.0\,\mathrm{MJ}/\mathrm{kg}$; hydrogen $285.8 / 0.0020$, $142.9\,\mathrm{MJ}/\mathrm{kg}$.

**8.** Hydrogen > methane > octane > ethanol.

**9.** Hydrogen is a very light gas: a kilogram of it fills a huge volume at normal pressure, so it must be squeezed into heavy high-pressure tanks.

**10.** Methane: 4 $\ce{C-H}$; dioxygen: 2 $\ce{O=O}$ broken. Carbon dioxide: 2 $\ce{C=O}$; water: $2 \times 2 = 4$ $\ce{O-H}$ formed.

**11.** $4 \times 415 + 2 \times 498 = 2656\,\mathrm{kJ}$.

**12.** $2 \times 741 + 4 \times 464 = 3338\,\mathrm{kJ}$.

**13.** $E_r \approx 2656 - 3338 = -682\,\mathrm{kJ}$, against $-890.7\,\mathrm{kJ}$ measured: about $23\,\%$ too small in size.

**14.** Average bond energies (the $\ce{C=O}$ of carbon dioxide is stronger than average); liquid water in the measurement, gases in the estimate.

**15.** $1000 / 890.7 = 1.123\,\mathrm{mol}$.

**16.** $1.123 \times 44.0 = 49.4\,\mathrm{g}$.

**17.** Ethanol: $1000 / 1367.6 = 0.731\,\mathrm{mol}$, giving $1.462\,\mathrm{mol}$ of carbon dioxide, $64.3\,\mathrm{g}$. Octane: $1000 / 5470 = 0.183\,\mathrm{mol}$, giving $1.463\,\mathrm{mol}$, $64.4\,\mathrm{g}$.

**18.** Methane: it has the most hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) per carbon [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) (4 against 2.25 for octane), and [burning](https://one-course.com/books/chemistry/1/en/chapter/5-burning-what-a-fire-needs#def-g4-what-a-fire-needs-burning) hydrogen gives energy without carbon dioxide.

**19.** On how the hydrogen is made: from water with electricity from renewable sources, it releases almost no carbon dioxide; made from methane, it releases carbon dioxide at the factory instead of the exhaust.

**20.** Methane releases about $49\,\mathrm{g}$ of carbon dioxide per megajoule.
