Alkanes and Fuels
2. Naming Alkanes
Learning outcomes
- I can identify the first members of the alkane homologous series.
- I can apply IUPAC naming rules to simple alkanes.
- I can determine the number of carbon atoms from an alkane name.
- I can write the correct name for a given alkane structure.
- I can write the correct formula from an alkane name.
Why Do Chemical Compounds Need Names?
Millions of organic compounds are known. Chemists therefore need a systematic way of naming them.
The International Union of Pure and Applied Chemistry (IUPAC) provides internationally accepted rules for naming chemical compounds.
A systematic name gives information about the compound's structure.
For simple alkanes, the name tells us:
- how many carbon atoms are present
- which carbon chain is the longest
- whether branches are attached
- where those branches are located
Review: What Is an Alkane?
An alkane is a saturated hydrocarbon.
This means it contains:
- only carbon and hydrogen
- only single carbon-carbon bonds
For acyclic alkanes, the general formula is:
CₙH₂ₙ₊₂
where n is the number of carbon atoms.
Examples:
CH₄
C₂H₆
C₃H₈
C₄H₁₀
The Alkane Naming Pattern
The names of alkanes have two important parts:
prefix + ane
The prefix tells us the number of carbon atoms.
The ending:
-ane
tells us that the compound is an alkane.
For example:
prop + ane = propane
The prefix prop- indicates three carbon atoms.
The First Ten Alkanes
These names are important to learn.
| Number of Carbon Atoms | Name | Molecular Formula |
|---|---|---|
| 1 | Methane | CH₄ |
| 2 | Ethane | C₂H₆ |
| 3 | Propane | C₃H₈ |
| 4 | Butane | C₄H₁₀ |
| 5 | Pentane | C₅H₁₂ |
| 6 | Hexane | C₆H₁₄ |
| 7 | Heptane | C₇H₁₆ |
| 8 | Octane | C₈H₁₈ |
| 9 | Nonane | C₉H₂₀ |
| 10 | Decane | C₁₀H₂₂ |
Learning the Prefixes
The first four prefixes are especially important because they are not as obvious:
meth- = 1
eth- = 2
prop- = 3
but- = 4
From five onward, the prefixes are more closely related to familiar numerical prefixes:
pent- = 5
hex- = 6
hept- = 7
oct- = 8
non- = 9
dec- = 10
Determining Carbon Atoms from the Name
Once the prefixes are known, the number of carbon atoms can be identified immediately.
For example:
hexane
The prefix is:
hex-
Hex means:
6
Therefore, hexane contains:
6 carbon atoms
Its molecular formula is:
C₆H₁₄
Another Example
Consider:
octane
The prefix:
oct-
means:
8 carbon atoms
Use the alkane general formula:
CₙH₂ₙ₊₂
For:
n = 8
Hydrogen:
2(8) + 2 = 18
Therefore:
octane = C₈H₁₈
Writing a Molecular Formula from a Name
Suppose you are asked:
What is the molecular formula of heptane?
Step 1: Identify the prefix.
hept- = 7 carbons
Step 2: Use:
CₙH₂ₙ₊₂
Step 3: Substitute:
n = 7
Step 4: Calculate hydrogen:
2(7) + 2 = 16
Therefore:
heptane = C₇H₁₆
Writing a Name from a Molecular Formula
Suppose you are given:
C₅H₁₂
First check whether it follows the alkane formula.
For:
n = 5
2(5) + 2 = 12
Yes.
Five carbon atoms use the prefix:
pent-
Add:
-ane
Therefore:
C₅H₁₂ = pentane
Straight-Chain Alkanes
The simplest alkanes have carbon atoms arranged in a continuous chain.
For example:
propane
CH₃–CH₂–CH₃
contains three carbon atoms.
butane
CH₃–CH₂–CH₂–CH₃
contains four carbon atoms.
pentane
CH₃–CH₂–CH₂–CH₂–CH₃
contains five carbon atoms.
Count the carbon atoms in the continuous chain to determine the basic name.
Condensed Structural Formulas
Organic structures can be written in a compact form called a condensed structural formula.
Examples:
Methane:
CH₄
Ethane:
CH₃CH₃
Propane:
CH₃CH₂CH₃
Butane:
CH₃CH₂CH₂CH₃
Pentane:
CH₃CH₂CH₂CH₂CH₃
Each C represents one carbon atom.
Counting the carbon atoms allows us to determine the alkane name.
Naming a Straight-Chain Structure
Consider:
CH₃–CH₂–CH₂–CH₂–CH₂–CH₃
Count the carbon atoms:
6
Six carbons correspond to:
hex-
Because the molecule is an alkane:
hex + ane = hexane
Therefore, the name is:
hexane
Why Naming Becomes More Complicated
Not every alkane forms one straight chain.
Carbon atoms can also form branches.
For example, the molecular formula:
C₄H₁₀
can represent more than one structure.
One structure is:
butane
Another is:
2-methylpropane
These compounds have the same molecular formula but different arrangements of atoms.
They are structural isomers.
Naming Branched Alkanes
For a simple branched alkane, use this basic procedure:
1. Find the longest continuous carbon chain.
2. Name that chain.
3. Identify any branches.
4. Number the main chain.
5. Give each branch the lowest possible position number.
6. Combine the numbers, branch names, and parent-chain name.
Step 1: Find the Longest Carbon Chain
The longest continuous chain determines the parent name.
For example, if the longest continuous chain contains:
5 carbon atoms
the parent alkane is:
pentane
Even if the entire molecule contains more than five carbon atoms, the longest continuous chain determines the parent name.
The Longest Chain Does Not Have to Look Straight
This is an important rule.
When a structure is drawn on paper, the longest carbon chain may bend or change direction.
You are looking for the longest continuous sequence of connected carbon atoms, not necessarily the longest horizontal line on the page.
Step 2: Identify the Branches
A branch attached to the main chain is called a substituent.
Simple alkane branches are called alkyl groups.
They are named by changing:
-ane
to:
-yl
For example:
Methane → methyl
Ethane → ethyl
Propane → propyl
For introductory naming, methyl and ethyl branches are especially common.
The Methyl Group
A methyl group is:
–CH₃
It contains one carbon atom.
If a methyl group is attached to a propane chain, the molecule might be named:
2-methylpropane
The name tells us:
2- → branch is attached to carbon 2
methyl → branch contains one carbon
propane → longest chain contains three carbon atoms
Numbering the Main Chain
The main carbon chain must be numbered.
Number from the end that gives the first branch the lowest possible number.
Consider a five-carbon chain with a methyl branch.
If numbering from the left places the branch on carbon:
2
but numbering from the right places it on carbon:
4
choose:
2
The correct name would be:
2-methylpentane
not:
4-methylpentane
Example: 2-Methylpropane
Consider:
CH3
|
CH3-CH-CH3
The longest continuous chain contains:
3 carbons
Parent:
propane
There is one:
methyl group
attached to carbon:
2
Therefore:
2-methylpropane
Example: 2-Methylbutane
Consider:
CH3
|
CH3-CH-CH2-CH3
Longest chain:
4 carbon atoms
Parent:
butane
Branch:
methyl
Position:
2
Name:
2-methylbutane
Why It Is Not 3-Methylbutane
The same structure could be numbered from the opposite end.
That would place the methyl group at:
carbon 3
But IUPAC naming requires the lower number.
Compare:
2-methylbutane
and:
3-methylbutane
Choose:
2-methylbutane
More Than One Branch
A molecule can contain more than one identical branch.
Prefixes are used to indicate how many identical substituents are present.
di- = 2
tri- = 3
tetra- = 4
For example:
2,3-dimethylbutane
contains:
- a four-carbon parent chain
- one methyl group on carbon 2
- one methyl group on carbon 3
Example: 2,2-Dimethylpropane
Consider:
CH3
|
CH3 - C - CH3
|
CH3
The longest continuous chain contains:
3 carbons
Parent:
propane
Two methyl groups are attached to:
carbon 2
Therefore:
2,2-dimethylpropane
Writing Position Numbers
Position numbers are called locants.
When more than one number is used, separate the numbers with commas.
Correct:
2,3-dimethylbutane
Not:
2-3-dimethylbutane
Use a hyphen between numbers and words.
Correct:
2,3-dimethylbutane
This punctuation is part of the systematic name.
Different Types of Branches
Some alkanes contain different substituents.
For example, a molecule might contain:
- an ethyl group
- a methyl group
When different substituent names appear together, they are normally listed in alphabetical order.
For example:
ethyl
comes before:
methyl
because E comes before M.
Prefixes such as di-, tri-, and tetra- are not normally considered when alphabetizing substituent names.
The Lowest Set of Locants
With more complicated branched structures, choose the numbering direction that gives the substituents the lowest set of locants according to IUPAC rules.
For introductory examples, this often means:
start numbering from the end nearest the first branch.
For example:
2,3-dimethylpentane
is preferred over:
3,4-dimethylpentane
because:
2,3
is the lower set of position numbers.
Naming from a Displayed Structure
When given a structure:
Step 1: Find the longest continuous carbon chain.
Step 2: Count its carbon atoms.
Step 3: Determine the parent alkane.
Step 4: Number the chain.
Step 5: Identify each branch.
Step 6: Record each branch position.
Step 7: Use di-, tri-, or tetra- if identical branches repeat.
Step 8: Arrange different substituents alphabetically.
Step 9: Assemble the complete name.
Example: Name This Structure
Consider:
CH3
|
CH3-CH-CH2-CH2-CH3
Step 1: Longest chain:
5 carbons
Parent:
pentane
Step 2: Branch:
methyl
Step 3: Number from the nearest end.
Branch position:
2
Name:
2-methylpentane
Example: Two Methyl Branches
Consider:
CH3 CH3
| |
CH3 - CH - CH - CH3
Longest chain:
4 carbons
Parent:
butane
Branches:
two methyl groups
Positions:
2 and 3
Use:
di-
Name:
2,3-dimethylbutane
Molecular Formula from a Branched Alkane Name
Branching changes the arrangement of atoms but does not change the general formula for an acyclic saturated alkane.
Consider:
2-methylbutane
Count all carbon atoms.
Parent chain:
4 carbons
Methyl branch:
1 carbon
Total:
5 carbon atoms
Therefore:
n = 5
Use:
CₙH₂ₙ₊₂
C₅H₁₂
So:
2-methylbutane = C₅H₁₂
Another Formula Example
Find the molecular formula of:
2,3-dimethylbutane
Parent chain:
4 carbon atoms
Two methyl groups:
2 additional carbon atoms
Total:
6 carbon atoms
Use:
CₙH₂ₙ₊₂
H = 2(6) + 2
= 14
Therefore:
C₆H₁₄
Structural Isomers
Compounds with the same molecular formula but different structural formulas are called structural isomers.
For example:
C₅H₁₂
has several possible structures.
These include:
pentane
2-methylbutane
2,2-dimethylpropane
All three contain:
5 carbon atoms
and:
12 hydrogen atoms
but their carbon atoms are arranged differently.
Why Names Matter
If we simply said:
C₅H₁₂
we would know the molecular formula but not necessarily the exact structure.
The systematic name:
2-methylbutane
provides structural information.
It tells us:
- the parent chain has four carbons
- there is a one-carbon methyl branch
- the branch is attached to carbon 2
This is why systematic naming becomes increasingly useful as molecules become more complicated.
From Name to Structure
Suppose you are given:
3-methylhexane
Break the name apart.
hexane
means the main chain contains:
6 carbons
Draw:
C–C–C–C–C–C
Then:
3-methyl
means place a:
CH₃
group on carbon 3.
A condensed formula can be written as:
CH₃CH₂CH(CH₃)CH₂CH₂CH₃
From Name to Formula
Find the formula of:
3-methylhexane
Parent chain:
6 carbons
Methyl branch:
1 carbon
Total:
7 carbons
For an acyclic alkane:
CₙH₂ₙ₊₂
Therefore:
C₇H₁₆
Worked Example 1: Methane
Name:
methane
Prefix:
meth-
Carbon atoms:
1
Formula:
CH₄
Worked Example 2: Butane
Name:
butane
Prefix:
but-
Carbon atoms:
4
Formula:
C₄H₁₀
Condensed structure:
CH₃CH₂CH₂CH₃
Worked Example 3: Nonane
Name:
nonane
Carbon atoms:
9
Calculate hydrogen:
2(9) + 2 = 20
Formula:
C₉H₂₀
Worked Example 4: Name C₈H₁₈
Carbon atoms:
8
Prefix:
oct-
Add:
-ane
Name:
octane
Worked Example 5: Name a Straight Chain
Structure:
CH₃–CH₂–CH₂–CH₂–CH₃
Count carbons:
5
Parent:
pentane
Answer:
pentane
Worked Example 6: Name a Branched Structure
Structure:
CH3
|
CH3-CH-CH2-CH3
Longest chain:
4 carbons
Parent:
butane
Branch:
methyl
Position:
2
Answer:
2-methylbutane
Worked Example 7: Formula from a Branched Name
Name:
2-methylpentane
Parent chain:
5 C
Methyl branch:
1 C
Total:
6 C
Use:
CₙH₂ₙ₊₂
Formula:
C₆H₁₄
Worked Example 8: Two Branches
Name:
2,3-dimethylpentane
Parent chain:
5 C
Two methyl branches:
2 C
Total:
7 C
Formula:
C₇H₁₆
Worked Example 9: Correct the Name
A student names a structure:
4-methylpentane
But numbering from the other end places the branch at:
carbon 2
Therefore, the correct name is:
2-methylpentane
Always number from the end that gives the substituent the appropriate lowest locant.
Worked Example 10: Find the Structure from the Name
Name:
2,2-dimethylbutane
Parent:
butane = 4-carbon chain
Branches:
two methyl groups
Both are attached to:
carbon 2
A condensed structural formula is:
CH₃C(CH₃)₂CH₂CH₃
Total carbon atoms:
6
Molecular formula:
C₆H₁₄
A Useful Naming Checklist
When naming a straight-chain alkane:
Count the carbons → choose the prefix → add -ane
When naming a branched alkane:
Find longest chain → name parent → number chain → identify branches → locate branches → assemble name
When finding a formula:
Count all carbon atoms → use CₙH₂ₙ₊₂
Common Mistakes
Mistake 1: Counting only the carbon atoms drawn horizontally
The longest chain may bend.
Look for the longest continuous carbon chain.
Mistake 2: Counting the branch as part of the parent automatically
The parent is determined by the longest continuous chain, not by how the structure is positioned on the page.
Mistake 3: Numbering from the wrong end
Choose the direction that gives the branches the appropriate lowest locants.
Mistake 4: Forgetting the branch position
Write:
2-methylbutane
not simply:
methylbutane
when a locant is needed.
Mistake 5: Forgetting di- for two identical branches
Two methyl groups require:
dimethyl
Mistake 6: Using hyphens between numbers
Correct:
2,3-dimethylbutane
Numbers are separated by commas.
Mistake 7: Forgetting hyphens between numbers and words
Correct:
2-methylpentane
Mistake 8: Counting only the parent chain when finding the molecular formula
For:
2-methylpentane
there are:
5 + 1 = 6 carbons
not five.
Mistake 9: Changing the molecular formula because the chain is branched
Straight-chain and branched acyclic alkanes still follow:
CₙH₂ₙ₊₂
Real-World Connection: Octane
The name octane tells us that the molecule contains:
8 carbon atoms
Its molecular formula is:
C₈H₁₈
The word "octane" is also familiar from gasoline octane ratings.
However, an octane rating does not simply tell us how much octane is present in gasoline. It describes the fuel's resistance to engine knocking using standardized reference fuels.
One important reference compound is:
2,2,4-trimethylpentane
commonly called isooctane.
Its molecular formula is also:
C₈H₁₈
This provides a real-world example of why different structural arrangements of the same molecular formula matter.
Real-World Connection: Hydrocarbon Fuels
Alkanes occur in many fuels and petroleum-derived products.
Examples include:
Methane — natural gas
Propane — LPG and heating fuels
Butane — portable fuel canisters
Octane-related hydrocarbons — gasoline
Knowing the names and structures of alkanes provides a foundation for understanding petroleum chemistry, combustion, fuels, polymers, and many other areas of organic chemistry.
Did You Know?
Carbon's ability to form long chains and branches means that the number of possible alkane structures increases rapidly as the number of carbon atoms increases.
Methane has only one possible carbon arrangement.
Ethane and propane also have only one.
But larger alkanes can have several different structural isomers.
As molecules become larger, systematic IUPAC naming becomes essential because a molecular formula alone may not identify a unique structure.
Key Terms
- IUPAC: International Union of Pure and Applied Chemistry; organization responsible for internationally standardized chemical naming systems.
- Alkane: Saturated hydrocarbon containing only single carbon-carbon bonds.
- Homologous series: Family of compounds with the same general formula and similar chemical properties.
- Parent chain: Longest continuous carbon chain used as the basis of an alkane name.
- Prefix: Part of the name indicating the number of carbon atoms.
- Substituent: Atom or group attached to the parent chain.
- Alkyl group: Hydrocarbon substituent formed conceptually by removing one hydrogen from an alkane.
- Methyl: One-carbon alkyl group, –CH₃.
- Ethyl: Two-carbon alkyl group, –CH₂CH₃.
- Locant: Number indicating the position of a substituent.
- Molecular formula: Formula showing the number of each type of atom.
- Structural formula: Formula showing how atoms are connected.
- Structural isomer: Compound with the same molecular formula as another compound but a different arrangement of atoms.
- Straight-chain alkane: Alkane with an unbranched carbon chain.
- Branched alkane: Alkane containing one or more carbon branches.
Key Naming Rules
For a simple straight-chain alkane:
1. Count the carbon atoms.
2. Choose the correct prefix.
3. Add -ane.
For a branched alkane:
1. Find the longest continuous carbon chain.
2. Name the parent chain.
3. Number the parent chain appropriately.
4. Identify the substituents.
5. Determine their positions.
6. Use di-, tri-, tetra-, etc. for repeated identical substituents.
7. List different substituent types alphabetically.
8. Use commas between numbers and hyphens between numbers and words.
9. Combine everything into one systematic name.
Key Takeaways
- Alkane names provide information about molecular structure.
- The ending -ane identifies an alkane.
- meth-, eth-, prop-, and but- represent one to four carbon atoms.
- pent-, hex-, hept-, oct-, non-, and dec- represent five to ten carbon atoms.
- Methane through decane are the first ten members of the alkane homologous series.
- Straight-chain alkanes can be named by counting the carbon atoms and selecting the correct prefix.
- Acyclic alkanes follow the general formula CₙH₂ₙ₊₂.
- A molecular formula can be predicted from the number of carbon atoms.
- Branched alkanes are named using a parent chain and substituents.
- The longest continuous carbon chain determines the parent name.
- The longest chain does not necessarily appear as a straight horizontal line in a drawing.
- The parent chain is numbered to give substituents the appropriate lowest locants.
- Methyl and ethyl are common alkyl substituents.
- di-, tri-, and tetra- indicate repeated identical substituents.
- Different substituent types are listed alphabetically.
- Commas separate numbers, while hyphens separate numbers from words.
- Branched and straight-chain alkanes can have the same molecular formula but different structures.
- Systematic IUPAC naming allows chemists to communicate molecular structures clearly and consistently.