Alkanes and Fuels
1. The Alkane Family
Learning outcomes
- I can define alkanes as saturated hydrocarbons.
- I can explain the meaning of a saturated compound.
- I can identify alkanes from their molecular formulas.
- I can recognize the general formula of alkanes.
- I can describe the bonding present in alkane molecules.
What Are Alkanes?
Alkanes are a family of organic compounds made entirely from carbon and hydrogen.
A compound containing only carbon and hydrogen is called a hydrocarbon.
Alkanes contain only single covalent bonds between their carbon atoms.
Because they contain only single carbon-carbon bonds, alkanes are described as saturated hydrocarbons.
The simplest alkane is methane, CH₄.
Other common alkanes include:
- ethane
- propane
- butane
- pentane
- hexane
Alkanes are important because they form a major part of fuels such as natural gas, gasoline, diesel, and liquefied petroleum gas.
Hydrocarbons
A hydrocarbon is a compound containing only:
carbon (C)
and:
hydrogen (H)
For example:
CH₄
contains only carbon and hydrogen, so it is a hydrocarbon.
C₂H₆
also contains only carbon and hydrogen.
However:
C₂H₅OH
contains oxygen as well as carbon and hydrogen, so it is not a hydrocarbon.
What Does Saturated Mean?
Alkanes are described as saturated.
A saturated hydrocarbon contains only single covalent bonds between carbon atoms.
For example, ethane has the structure:
CH₃–CH₃
The two carbon atoms are connected by a single bond.
There are no:
C=C double bonds
or:
C≡C triple bonds
This is the key feature of an alkane.
Why Are They Called Saturated?
Carbon normally forms:
4 covalent bonds
In an alkane, each carbon atom forms as many bonds with hydrogen atoms as possible while maintaining only single bonds between carbon atoms.
For example, methane is:
CH₄
One carbon atom forms four single bonds with four hydrogen atoms.
Ethane is:
C₂H₆
Each carbon forms one bond with the other carbon and three bonds with hydrogen.
The molecule is therefore "saturated" with hydrogen for that carbon skeleton.
Carbon Forms Four Bonds
Carbon has four electrons available for bonding in its outer shell and normally forms four covalent bonds in stable organic molecules.
Consider methane:
CH₄
The carbon forms:
4 C–H bonds
In ethane:
CH₃–CH₃
each carbon forms:
- 1 C–C bond
- 3 C–H bonds
Total for each carbon:
4 bonds
Hydrogen Forms One Bond
Hydrogen normally forms:
1 covalent bond
Therefore, each hydrogen atom in an alkane is connected to one carbon atom.
For example, in methane:
CH₄
four hydrogen atoms each form one bond with the central carbon atom.
Covalent Bonding in Alkanes
The bonds within alkane molecules are covalent bonds.
A covalent bond forms when atoms share pairs of electrons.
Alkanes contain:
C–C single covalent bonds
and:
C–H single covalent bonds
There are no ionic bonds within an alkane molecule.
Methane
The simplest alkane is:
methane
Molecular formula:
CH₄
Methane contains:
- 1 carbon atom
- 4 hydrogen atoms
The carbon forms four single covalent bonds.
Methane is the main component of natural gas and is commonly used as a fuel.
The Shape of Methane
Methane is sometimes drawn as a flat structure on paper.
However, the actual molecule is three-dimensional.
The four C–H bonds point toward the corners of a tetrahedral arrangement.
The bond angle is approximately:
109.5°
This arrangement keeps the bonding electron pairs as far apart as possible.
Ethane
The second member of the alkane family is:
ethane
Molecular formula:
C₂H₆
Structural formula:
CH₃–CH₃
Ethane contains:
- 2 carbon atoms
- 6 hydrogen atoms
- 1 C–C single bond
- 6 C–H single bonds
Both carbon atoms form four covalent bonds.
Propane
The third alkane is:
propane
Molecular formula:
C₃H₈
Structural formula:
CH₃–CH₂–CH₃
Propane contains:
- 3 carbon atoms
- 8 hydrogen atoms
It is commonly stored as a fuel under pressure.
Butane
The fourth member is:
butane
Molecular formula:
C₄H₁₀
One possible structural formula is:
CH₃–CH₂–CH₂–CH₃
Butane is commonly used as a fuel in products such as portable gas canisters.
The First Members of the Alkane Family
| Alkane | Number of C atoms | Molecular Formula |
|---|---|---|
| Methane | 1 | CH₄ |
| Ethane | 2 | C₂H₆ |
| Propane | 3 | C₃H₈ |
| Butane | 4 | C₄H₁₀ |
| Pentane | 5 | C₅H₁₂ |
| Hexane | 6 | C₆H₁₄ |
| Heptane | 7 | C₇H₁₆ |
| Octane | 8 | C₈H₁₈ |
| Nonane | 9 | C₉H₂₀ |
| Decane | 10 | C₁₀H₂₂ |
Notice that each new member adds:
CH₂
to the previous member.
A Homologous Series
Alkanes form a homologous series.
A homologous series is a family of organic compounds that have:
- the same general formula
- similar chemical properties
- the same type of functional pattern
- a gradual change in physical properties
- successive members differing by CH₂
For example:
Ethane:
C₂H₆
Propane:
C₃H₈
Difference:
CH₂
Naming Alkanes
The beginning of an alkane's name tells us how many carbon atoms are present.
meth- = 1 carbon
eth- = 2 carbons
prop- = 3 carbons
but- = 4 carbons
pent- = 5 carbons
hex- = 6 carbons
hept- = 7 carbons
oct- = 8 carbons
non- = 9 carbons
dec- = 10 carbons
The ending:
-ane
indicates that the compound is an alkane.
The General Formula of Alkanes
All simple acyclic alkanes follow the general formula:
CₙH₂ₙ₊₂
where:
n = number of carbon atoms
This formula allows us to predict the molecular formula of an alkane.
Using the General Formula
Suppose an alkane contains:
5 carbon atoms
Then:
n = 5
General formula:
CₙH₂ₙ₊₂
Number of hydrogen atoms:
2(5) + 2
= 12
Therefore:
C₅H₁₂
This is pentane.
Another General Formula Example
Suppose:
n = 8
Hydrogen atoms:
2(8) + 2
= 18
Formula:
C₈H₁₈
This is:
octane
Why Is the Formula CₙH₂ₙ₊₂?
Consider a straight chain containing several carbon atoms.
Each carbon needs:
4 bonds
The carbon atoms inside the chain are bonded to two other carbon atoms.
The carbon atoms at the ends are bonded to only one other carbon atom.
The remaining bonds are filled by hydrogen.
This produces the relationship:
number of H atoms = 2n + 2
Therefore:
CₙH₂ₙ₊₂
Identifying an Alkane from Its Formula
To determine whether a molecular formula could represent an acyclic alkane:
Step 1: Identify the number of carbon atoms.
Step 2: Substitute that number into:
H = 2n + 2
Step 3: Compare the predicted number of hydrogens with the formula.
Example: Is C₆H₁₄ an Alkane?
Number of carbon atoms:
n = 6
Calculate:
2(6) + 2 = 14
The formula contains:
14 hydrogen atoms
Therefore:
C₆H₁₄ fits the general formula for an alkane.
Example: Is C₅H₁₀ an Alkane?
Number of carbon atoms:
n = 5
An acyclic alkane would require:
2(5) + 2 = 12
So its formula would be:
C₅H₁₂
But the given formula is:
C₅H₁₀
Therefore, C₅H₁₀ does not fit the general formula for an acyclic alkane.
A molecular formula that does not fit the alkane formula may belong to another type of compound.
Important Limitation of the General Formula
The formula:
CₙH₂ₙ₊₂
applies to acyclic alkanes, meaning saturated hydrocarbons without carbon rings.
Saturated hydrocarbons containing rings are called cycloalkanes.
For example, cyclohexane has the formula:
C₆H₁₂
but it still contains only single carbon-carbon bonds.
So when using molecular formulas to identify alkanes, it is important to know whether the question is referring specifically to the ordinary acyclic alkane homologous series.
Molecular Formula and Structural Formula
A molecular formula tells us the number of each type of atom.
Example:
C₄H₁₀
A structural formula gives additional information about how atoms are connected.
For example:
CH₃–CH₂–CH₂–CH₃
Both represent butane, but the structural formula provides more information about bonding.
Displayed Formulas
A displayed formula shows the individual bonds between atoms.
For example, methane can be represented as:
H
|
H - C - H
|
H
Each line represents a:
single covalent bond
Displayed formulas are useful because they make it easy to count the bonds formed by each atom.
Counting Bonds in an Alkane
Consider propane:
CH₃–CH₂–CH₃
Carbon 1:
3 C–H bonds + 1 C–C bond = 4 bonds
Carbon 2:
2 C–H bonds + 2 C–C bonds = 4 bonds
Carbon 3:
3 C–H bonds + 1 C–C bond = 4 bonds
Every carbon forms:
4 covalent bonds
Every hydrogen forms:
1 covalent bond
Single Bonds and Saturation
Compare these carbon-carbon bonds:
C–C
single bond
C=C
double bond
C≡C
triple bond
Alkanes contain only:
C–C
single bonds.
Compounds containing carbon-carbon double or triple bonds are described as unsaturated.
Alkanes Compared with Alkenes
Alkanes:
- saturated
- only C–C single bonds
- general formula CₙH₂ₙ₊₂ for acyclic alkanes
Alkenes:
- unsaturated
- contain at least one C=C double bond
- simple acyclic alkenes containing one double bond have the general formula CₙH₂ₙ
For example:
Ethane:
C₂H₆
Ethene:
C₂H₄
The alkene contains fewer hydrogen atoms because of the carbon-carbon double bond.
Why Alkanes Are Molecular Substances
Alkanes exist as individual molecules.
Strong covalent bonds hold the atoms within each molecule together.
However, the forces between separate alkane molecules are much weaker than the covalent bonds within the molecules.
This distinction helps explain many physical properties of hydrocarbons.
Structure of Larger Alkanes
As more carbon atoms are added, the carbon chain becomes longer.
For example:
Pentane:
CH₃–CH₂–CH₂–CH₂–CH₃
Hexane:
CH₃–CH₂–CH₂–CH₂–CH₂–CH₃
Each additional carbon in the homologous series effectively adds:
CH₂
to the molecular formula.
Straight-Chain and Branched Alkanes
Alkanes do not always form straight carbon chains.
For example, the molecular formula:
C₄H₁₀
can represent different arrangements of atoms.
One arrangement is straight-chain butane.
Another is a branched structure called 2-methylpropane.
These compounds have the same molecular formula but different structural arrangements.
They are examples of structural isomers.
Both are still alkanes because they contain only single carbon-carbon bonds.
Physical Trends in the Alkane Family
As the carbon chain becomes longer, several physical properties change gradually.
Generally, larger alkanes have:
- higher boiling points
- higher melting points overall, although the pattern is not perfectly smooth
- greater viscosity
- lower volatility
Small alkanes are often gases at room conditions.
Medium-sized alkanes are commonly liquids.
Very large hydrocarbons may be thick liquids or solids.
This gradual change in physical properties is characteristic of a homologous series.
Alkanes as Fuels
Many alkanes are useful fuels because they release energy when they undergo combustion.
Examples include:
- methane in natural gas
- propane in fuel cylinders
- butane in portable fuel canisters
- hydrocarbons in gasoline
- hydrocarbons in kerosene and diesel
The properties of different hydrocarbons make them suitable for different applications.
Complete Combustion
When an alkane burns in sufficient oxygen, complete combustion produces:
carbon dioxide + water
For example, methane:
CH₄ + 2O₂ → CO₂ + 2H₂O
Energy is released during the reaction.
This is why methane can be used as a fuel.
Carbon Chains in Everyday Fuels
Different fuels contain hydrocarbons with different ranges of carbon-chain lengths.
Shorter hydrocarbons tend to be more volatile.
Longer hydrocarbons tend to have higher boiling points and greater viscosity.
This helps explain why hydrocarbon mixtures can be separated and used for different purposes.
Worked Example 1: Identify the Alkane
Is:
C₄H₁₀
an alkane?
Use:
CₙH₂ₙ₊₂
For:
n = 4
Hydrogen:
2(4) + 2 = 10
Therefore:
C₄H₁₀ fits the general formula.
It is an alkane.
Worked Example 2: Predict a Formula
Find the molecular formula of an alkane containing:
7 carbon atoms
Use:
CₙH₂ₙ₊₂
n = 7
Hydrogen:
2(7) + 2 = 16
Formula:
C₇H₁₆
This is heptane.
Worked Example 3: Identify a Non-Alkane Formula
Does:
C₃H₆
fit the acyclic alkane general formula?
For:
n = 3
Expected hydrogen:
2(3) + 2 = 8
Expected alkane:
C₃H₈
Therefore:
C₃H₆ does not fit the acyclic alkane general formula.
Worked Example 4: Find the Number of Carbons
An alkane has the formula:
C₉H₂₀
Number of carbon atoms:
9
Check:
2(9) + 2 = 20
Therefore, the formula follows:
CₙH₂ₙ₊₂
The alkane is:
nonane
Worked Example 5: Find the Number of Hydrogens
An alkane contains:
12 carbon atoms
Use:
H = 2n + 2
H = 2(12) + 2
H = 26
Formula:
C₁₂H₂₆
Worked Example 6: Comparing Two Hydrocarbons
Consider:
C₅H₁₂
and:
C₅H₁₀
For five carbon atoms, the acyclic alkane formula predicts:
H = 2(5) + 2 = 12
Therefore:
C₅H₁₂
fits the alkane formula.
C₅H₁₀
does not fit the acyclic alkane formula.
Worked Example 7: Bonding
Consider:
CH₃–CH₂–CH₃
This molecule contains:
- 3 carbon atoms
- 8 hydrogen atoms
- only single covalent bonds
Its molecular formula is:
C₃H₈
Therefore, it is:
propane
and belongs to the alkane family.
Worked Example 8: Following the Pattern
Complete the sequence:
CH₄
C₂H₆
C₃H₈
C₄H₁₀
Next member:
Add:
CH₂
Therefore:
C₅H₁₂
The next alkane is:
pentane
Recognizing Alkane Formulas Quickly
A useful pattern is:
Carbon atoms:
1, 2, 3, 4, 5, 6...
Hydrogen atoms:
4, 6, 8, 10, 12, 14...
Each time carbon increases by 1:
hydrogen increases by 2
This follows directly from:
CₙH₂ₙ₊₂
A Reliable Alkane Identification Strategy
Step 1: Check the elements.
Does the formula contain only carbon and hydrogen?
If not, it is not a hydrocarbon and therefore cannot be an alkane.
Step 2: Count the carbon atoms.
This gives:
n
Step 3: Calculate:
2n + 2
Step 4: Compare with the number of hydrogen atoms.
Step 5: If the formula matches CₙH₂ₙ₊₂, it can represent an acyclic alkane.
Step 6: If a structure is provided, check that all carbon-carbon bonds are single bonds.
Common Mistakes
Mistake 1: Saying every hydrocarbon is an alkane
Not all hydrocarbons are alkanes.
Some hydrocarbons contain double or triple bonds.
Mistake 2: Saying saturated means "full of carbon"
Saturated means the carbon framework contains only single carbon-carbon bonds, allowing the maximum number of hydrogen atoms for that acyclic carbon skeleton.
Mistake 3: Forgetting the +2
The alkane formula is:
CₙH₂ₙ₊₂
not:
CₙH₂ₙ
Mistake 4: Thinking alkanes contain ionic bonds
The atoms within alkane molecules are held together by:
covalent bonds
Mistake 5: Thinking carbon forms only one or two bonds
Carbon normally forms:
4 covalent bonds
in alkanes.
Mistake 6: Thinking hydrogen forms four bonds
Hydrogen normally forms:
1 covalent bond
Mistake 7: Identifying a compound from the number of carbons alone
For example:
C₄H₈
contains four carbon atoms, but it does not match the acyclic alkane formula:
C₄H₁₀
Real-World Connections
Alkanes are some of the most important compounds used as fuels and chemical raw materials.
Examples include:
Methane
Major component of natural gas.
Propane
Used in heating, cooking, and portable fuel systems.
Butane
Used in some portable fuel canisters.
Larger alkanes
Found in petroleum-derived fuels and other hydrocarbon products.
Understanding the structure of alkanes provides a foundation for studying fuels, petroleum chemistry, combustion, and other families of organic compounds.
Did You Know?
Methane contains only five atoms:
1 carbon + 4 hydrogen
but some hydrocarbons contain hundreds or even thousands of carbon atoms.
Organic chemistry contains an enormous variety of compounds partly because carbon atoms can form strong covalent bonds with one another, creating:
- chains
- branches
- rings
This ability of carbon to bond to itself is one reason carbon chemistry is so diverse.
Key Terms
- Alkane: Saturated hydrocarbon containing only single carbon-carbon bonds.
- Hydrocarbon: Compound containing only carbon and hydrogen.
- Saturated: Containing only single carbon-carbon bonds.
- Covalent bond: Bond formed through the sharing of electron pairs.
- Single bond: Covalent bond involving one shared pair of electrons.
- Molecular formula: Shows the number of each type of atom in a molecule.
- Structural formula: Shows how atoms are connected.
- Displayed formula: Representation showing individual bonds between atoms.
- General formula: Formula representing an entire family of related compounds.
- Homologous series: Family of organic compounds with the same general formula and similar chemical properties.
- Carbon chain: Sequence of carbon atoms bonded together.
- Structural isomer: Compound with the same molecular formula as another compound but a different arrangement of atoms.
- Combustion: Reaction with oxygen that releases energy.
- Acyclic: Structure that does not contain a ring.
Key Formula
For the ordinary acyclic alkane homologous series:
CₙH₂ₙ₊₂
where:
n = number of carbon atoms
Examples:
n = 1 → CH₄
n = 2 → C₂H₆
n = 3 → C₃H₈
n = 4 → C₄H₁₀
n = 5 → C₅H₁₂
n = 6 → C₆H₁₄
Key Takeaways
- Alkanes are hydrocarbons, meaning they contain only carbon and hydrogen.
- Alkanes are saturated hydrocarbons.
- Saturated hydrocarbons contain only single carbon-carbon bonds.
- The atoms within alkane molecules are joined by covalent bonds.
- Carbon normally forms four covalent bonds.
- Hydrogen normally forms one covalent bond.
- Alkanes contain C–C and C–H single covalent bonds.
- The general formula for acyclic alkanes is CₙH₂ₙ₊₂.
- The first four alkanes are methane, ethane, propane, and butane.
- Successive members of the alkane homologous series differ by CH₂.
- Molecular formulas can be checked against CₙH₂ₙ₊₂ to determine whether they fit the acyclic alkane series.
- Molecular formulas show which atoms are present, while structural and displayed formulas provide information about how the atoms are connected.
- Alkanes can have straight or branched carbon chains.
- Different structural arrangements can produce structural isomers.
- Alkanes are an important foundation for understanding organic chemistry, hydrocarbons, petroleum, and fuels.