Functional Groups
3. Esters
Learning outcomes
- I can identify the ester functional group.
- I can describe how esters are formed from alcohols and carboxylic acids.
- I can recognize and name simple esters.
- I can explain why many esters have distinctive odors.
- I can identify uses of esters in foods, fragrances, and industry.
Esters
Esters are a family of organic compounds containing the ester functional group:
–COO–
They are particularly important because many esters have distinctive, often pleasant aromas. Esters occur naturally in fruits and flowers and are also manufactured for use in flavourings, fragrances, solvents, cosmetics, pharmaceuticals, fuels, and polymers.
A simple ester can be produced when a carboxylic acid reacts with an alcohol:
carboxylic acid + alcohol ⇌ ester + water
For example:
ethanoic acid + ethanol ⇌ ethyl ethanoate + water
CH₃COOH + CH₃CH₂OH ⇌ CH₃COOCH₂CH₃ + H₂O
This reaction is called esterification.
The Ester Functional Group
The characteristic functional group in an ester is:
–COO–
A simple ester can be represented as:
R–COO–R′
where R and R′ represent carbon-containing groups.
Notice that the ester functional group contains:
- one carbon atom
- two oxygen atoms
- one C=O bond
- one C–O bond
For example, ethyl ethanoate can be written:
CH₃COOCH₂CH₃
The:
–COO–
section identifies it as an ester.
Comparing Functional Groups
It is important to distinguish the functional groups studied so far.
Alcohol
–OH
Example:
CH₃CH₂OH
ethanol
Carboxylic Acid
–COOH
Example:
CH₃COOH
ethanoic acid
Ester
–COO–
Example:
CH₃COOCH₂CH₃
ethyl ethanoate
These functional groups contain some of the same elements, but their atoms are arranged differently.
That difference in structure gives each family different chemical and physical properties.
How Are Esters Formed?
Esters can be formed when a carboxylic acid reacts with an alcohol.
General equation:
carboxylic acid + alcohol ⇌ ester + water
This reaction is called:
esterification
For example:
ethanoic acid + ethanol ⇌ ethyl ethanoate + water
The reaction combines parts of the acid and alcohol to form the ester while water is also produced.
Esterification Is a Condensation Reaction
Esterification is an example of a condensation reaction.
In a condensation reaction:
- two molecules join
- a small molecule is eliminated
During esterification, the small molecule produced is:
water, H₂O
Therefore:
carboxylic acid + alcohol → larger organic molecule + water
This is different from an addition reaction, where reactants combine without producing a small molecule such as water.
Esterification Is Reversible
Notice the reversible arrow:
⇌
in:
carboxylic acid + alcohol ⇌ ester + water
This means the reaction can occur in both directions.
The forward reaction produces an ester.
The reverse reaction can convert the ester back toward its starting materials under suitable conditions.
Therefore, esterification can reach a state of dynamic equilibrium.
Conditions for Esterification
In a school laboratory, esterification commonly involves:
- a carboxylic acid
- an alcohol
- an acid catalyst
- gentle heating
Concentrated sulfuric acid is commonly used as a catalyst in laboratory esterification.
The catalyst helps increase the reaction rate.
Because many alcohols and esters are flammable, heating is normally performed using an appropriate controlled method rather than directly over a flame.
Making an Ester in the Laboratory
A simplified school experiment might involve:
- placing a small amount of alcohol into a suitable container
- adding a carboxylic acid
- adding the required acid catalyst
- warming the mixture carefully
- allowing the product to cool
- detecting the characteristic ester aroma using appropriate laboratory procedures
The exact procedure depends on the chemicals and equipment being used.
Students should never directly sniff laboratory chemicals. If instructed to detect an odour, the teacher may demonstrate the correct wafting technique.
Where Does the Water Come From?
During esterification, atoms from the acid and alcohol rearrange to produce:
- the ester
- water
A simplified way of viewing the reaction is:
carboxylic acid + alcohol → ester + H₂O
For introductory chemistry, the important idea is that the acid and alcohol become connected through the:
–COO–
ester linkage, while water is removed.
Naming Esters
Ester names have two parts.
For example:
ethyl ethanoate
The first part comes from the alcohol.
The second part comes from the carboxylic acid.
The pattern is:
alkyl alkanoate
This is one of the most important rules to remember.
The First Part Comes from the Alcohol
Consider:
ethanol
When ethanol forms an ester, it contributes the:
ethyl
part of the name.
Examples:
methanol → methyl
ethanol → ethyl
propanol → propyl
butanol → butyl
Therefore, if ethanol is used to make an ester, the ester name begins with:
ethyl
The Second Part Comes from the Acid
The carboxylic acid provides the second part.
The ending:
-oic acid
changes to:
-oate
Examples:
methanoic acid → methanoate
ethanoic acid → ethanoate
propanoic acid → propanoate
butanoic acid → butanoate
Therefore:
ethanoic acid + ethanol → ethyl ethanoate + water
Naming Pattern
Remember:
ALCOHOL first → ACID second
Or:
alkyl + alkanoate
For example:
methanol + ethanoic acid → methyl ethanoate
ethanol + methanoic acid → ethyl methanoate
propanol + ethanoic acid → propyl ethanoate
ethanol + propanoic acid → ethyl propanoate
Worked Example: Ethanol + Ethanoic Acid
Alcohol:
ethanol
Alcohol part of ester name:
ethyl
Acid:
ethanoic acid
Acid part of ester name:
ethanoate
Therefore:
ethyl ethanoate
Equation:
ethanoic acid + ethanol ⇌ ethyl ethanoate + water
Worked Example: Methanol + Ethanoic Acid
Alcohol:
methanol
gives:
methyl
Acid:
ethanoic acid
gives:
ethanoate
Product:
methyl ethanoate
Therefore:
ethanoic acid + methanol ⇌ methyl ethanoate + water
Worked Example: Ethanol + Propanoic Acid
Alcohol:
ethanol → ethyl
Acid:
propanoic acid → propanoate
Therefore:
ethyl propanoate
Equation:
propanoic acid + ethanol ⇌ ethyl propanoate + water
Worked Example: Propanol + Butanoic Acid
Alcohol:
propanol → propyl
Acid:
butanoic acid → butanoate
Therefore:
propyl butanoate
This demonstrates that many different esters can be produced by combining different alcohols and carboxylic acids.
Recognizing an Ester from Its Structure
Consider:
CH₃COOCH₂CH₃
Look for:
–COO–
It is present.
Therefore, the molecule is an:
ester
Now separate the molecule conceptually around the ester linkage:
CH₃COO–CH₂CH₃
The right-hand carbon group is:
ethyl
The acid-derived portion is:
ethanoate
Therefore:
ethyl ethanoate
Worked Example: CH₃COOCH₃
Consider:
CH₃COOCH₃
It contains:
–COO–
so it is an ester.
The group attached after the oxygen is:
CH₃
which gives:
methyl
The acid-derived portion contains two carbon atoms:
ethanoate
Name:
methyl ethanoate
Worked Example: HCOOCH₂CH₃
Structure:
HCOOCH₂CH₃
The group attached after the oxygen is:
CH₂CH₃
which is:
ethyl
The acid-derived portion comes from methanoic acid:
methanoate
Therefore:
ethyl methanoate
Why Do Many Esters Have Distinctive Odours?
Many relatively small esters are volatile.
This means they evaporate readily enough for molecules to enter the air.
When these molecules reach receptors in the nose, they can produce characteristic smells.
Many small esters have odours commonly described as:
- fruity
- sweet
- floral
However, the smell of a compound depends on its molecular structure and concentration, and not every ester has a pleasant smell.
Esters and Fruit Aromas
Many natural fruit aromas involve mixtures containing esters.
Examples commonly associated with ester aromas include scents resembling:
- banana
- pear
- pineapple
- apple
- strawberry
Real fruit aromas are chemically complex and usually contain many different compounds rather than a single ester.
Nevertheless, esters are important contributors to many characteristic fruit aromas.
Esters in Food Flavourings
Because many esters have characteristic aromas and flavours, some are used in food manufacturing.
They can contribute to artificial or nature-identical flavour mixtures.
Applications can include:
- sweets
- drinks
- baked goods
- desserts
- flavour concentrates
Food flavourings generally contain carefully controlled quantities of approved substances.
A laboratory ester should never be tasted simply because an ester may also be used as a food flavouring.
Esters in Fragrances
Esters are widely used in:
- perfumes
- cosmetics
- soaps
- shampoos
- lotions
- air fresheners
Their usefulness comes partly from:
- distinctive aromas
- volatility
- ability to blend with other fragrance compounds
Perfumes usually contain complex mixtures rather than a single ester.
Esters as Solvents
Some esters are useful solvents.
One important example is:
ethyl ethanoate
also commonly called:
ethyl acetate
It is used as a solvent in applications such as:
- paints
- coatings
- inks
- adhesives
- laboratory work
- some cosmetic products
It is useful because it can dissolve many organic substances and is relatively volatile.
Ethyl Ethanoate
Ethyl ethanoate is one of the most important simple esters.
Formula:
CH₃COOCH₂CH₃
It can be produced from:
ethanoic acid + ethanol
Reaction:
CH₃COOH + CH₃CH₂OH ⇌ CH₃COOCH₂CH₃ + H₂O
It is a colourless, volatile liquid with a characteristic odour.
Its common name is:
ethyl acetate
Esters in Nail Products and Coatings
Some ester solvents are used in:
- nail products
- coatings
- adhesives
- inks
- paints
Their ability to dissolve organic materials and then evaporate makes them useful.
For example, a solvent can:
- dissolve other substances
- help spread the material
- evaporate
- leave the desired coating behind
This is similar to the role of some alcohol solvents.
Esters in Industry
Esters have many industrial applications beyond fragrances and flavourings.
They may be used as:
- solvents
- plasticizers
- chemical intermediates
- lubricants
- fuels or fuel components
- polymer starting materials
- pharmaceuticals
- coatings
The ester functional group also appears in many larger and more complicated molecules.
Esters in Fats and Oils
Many natural fats and oils contain ester linkages.
Fats and oils are largely composed of molecules called triglycerides.
Triglycerides form from:
- glycerol
- fatty acids
These molecules contain multiple ester linkages.
This means ester chemistry is not limited to perfumes and flavourings—it is also central to biology and nutrition.
Esters in Biodiesel
Some fuels known as biodiesel contain esters derived from biological oils or fats.
Chemical processing converts components of oils or fats into ester-containing fuel molecules.
This demonstrates another important application of ester chemistry:
renewable fuel production
However, the overall environmental impact depends on factors such as:
- source of the biological material
- land use
- energy used in production
- transportation
- agricultural practices
Esters in Polyesters
The ester functional group is also found in a major family of polymers called:
polyesters
One important example is:
PET
which is widely used in:
- beverage bottles
- food packaging
- fibres
- polyester clothing
The polymer contains many ester linkages along its molecular structure.
Esterification and Polymer Chemistry
A simple esterification reaction joins:
one alcohol + one carboxylic acid
Polyester formation involves molecules capable of forming multiple ester linkages.
This allows long polymer chains to develop.
The chemistry is therefore related:
alcohol group + carboxylic acid group → ester linkage + water
Repeated many times, this type of chemistry can contribute to polymer formation.
Esters and Water
Small esters have some interaction with water because they contain oxygen atoms.
However, unlike alcohols and carboxylic acids, simple esters do not contain an O–H group.
Therefore, ester molecules cannot form the same type of hydrogen bonds with each other that alcohols and carboxylic acids can.
This affects properties such as:
- boiling point
- solubility
- volatility
Many small esters have limited but noticeable water solubility.
As the non-polar carbon portion becomes larger, water solubility generally decreases.
Comparing Alcohols, Carboxylic Acids and Esters
| Property | Alcohol | Carboxylic Acid | Ester |
|---|---|---|---|
| Functional group | –OH | –COOH | –COO– |
| Example | Ethanol | Ethanoic acid | Ethyl ethanoate |
| Example formula | C₂H₅OH | CH₃COOH | CH₃COOC₂H₅ |
| Acidic? | Not normally | Yes | Not normally |
| Strong hydrogen bonding between own molecules? | Yes | Yes | Less extensive |
| Common uses | Fuels, solvents | Foods, chemicals | Fragrances, flavours, solvents |
| Typical small-molecule odour | Characteristic alcohol smell | Often sharp/sour | Often fruity/sweet |
Functional groups explain many of these differences.
Comparing Ethanol and Ethyl Ethanoate
Ethanol:
CH₃CH₂OH
contains an O–H bond.
It can form strong hydrogen bonds between its molecules.
Ethyl ethanoate:
CH₃COOCH₂CH₃
does not contain an O–H bond.
Therefore, its intermolecular attractions differ.
Ethyl ethanoate is quite volatile, which helps explain why its odour can be detected readily.
Ester Hydrolysis
Because esterification is reversible, esters can react with water and be broken down.
This process is called:
hydrolysis
A simplified pattern is:
ester + water → carboxylic acid + alcohol
This is essentially the reverse of esterification.
Esterification:
carboxylic acid + alcohol ⇌ ester + water
Hydrolysis:
ester + water → carboxylic acid + alcohol
Reaction conditions affect how readily these processes occur.
Connecting the Organic Families
Several organic families studied so far can now be connected.
Alkene
Contains:
C=C
An alkene can undergo hydration to produce an alcohol.
Alcohol
Contains:
–OH
Some alcohols can be oxidized to carboxylic acids.
Carboxylic Acid
Contains:
–COOH
Can react with an alcohol.
Ester
Contains:
–COO–
Forms from a carboxylic acid and an alcohol.
A simplified pathway is:
alkene → alcohol → carboxylic acid
and:
alcohol + carboxylic acid ⇌ ester + water
This is an important example of how organic reactions connect different families of compounds.
Worked Example: Predicting an Ester
Question:
What ester forms from methanol and propanoic acid?
Alcohol:
methanol → methyl
Acid:
propanoic acid → propanoate
Therefore:
methyl propanoate
Worked Example: Finding the Starting Materials
Question:
Which alcohol and acid produce ethyl butanoate?
First part:
ethyl
comes from:
ethanol
Second part:
butanoate
comes from:
butanoic acid
Therefore:
ethanol + butanoic acid ⇌ ethyl butanoate + water
Worked Example: Finding the Starting Materials
Ester:
propyl ethanoate
The:
propyl
part comes from:
propanol
The:
ethanoate
part comes from:
ethanoic acid
Therefore:
propanol + ethanoic acid ⇌ propyl ethanoate + water
Worked Example: Identify the Functional Group
Compound:
CH₃CH₂COOCH₃
Look for:
–COO–
Therefore:
Organic family:
ester
The CH₃ group after the oxygen gives:
methyl
The acid-derived section gives:
propanoate
Name:
methyl propanoate
Common Mistakes
Confusing Esters with Carboxylic Acids
Carboxylic acid:
–COOH
Ester:
–COO–
The ester does not contain the acidic –COOH group.
Confusing Esters with Alcohols
Alcohol:
–OH
Ester:
–COO–
Reversing the Ester Name
The alcohol-derived part comes first.
The acid-derived part comes second.
Writing "Ethanol Ethanoate"
The alcohol changes to an alkyl name.
ethanol → ethyl
Correct:
ethyl ethanoate
Forgetting the –oate Ending
The acid-derived portion of an ester ends in:
-oate
Forgetting Water
Esterification produces:
ester + water
Thinking Esterification Is an Addition Reaction
Esterification is a condensation reaction because water is produced.
Assuming All Esters Smell Pleasant
Many small esters have pleasant aromas, but this is not true for every ester.
Smelling Laboratory Chemicals Directly
Laboratory chemicals should never be directly sniffed.
Thinking Fruit Smell Comes from One Ester
Natural aromas are usually mixtures of many compounds.
Thinking Esters Only Have Food Uses
Esters are important in solvents, polymers, fuels, medicines, coatings and many other industries.
Confusing Ethyl Ethanoate and Ethanoic Acid
Ethyl ethanoate:
CH₃COOCH₂CH₃
Ethanoic acid:
CH₃COOH
They belong to different organic families.
Key Terms
Ester — An organic compound containing the –COO– functional group.
Ester functional group — The –COO– arrangement characteristic of esters.
Esterification — Reaction between a carboxylic acid and an alcohol to produce an ester and water.
Condensation reaction — A reaction in which molecules join and a small molecule such as water is produced.
Carboxylic acid — An organic compound containing the –COOH functional group.
Alcohol — An organic compound containing the –OH functional group.
Functional group — An atom or group of atoms responsible for characteristic properties and reactions.
Alkyl group — A carbon-containing group derived from an alkane; it forms the first part of a simple ester name.
Alkanoate — The acid-derived portion of a simple ester name.
Methanoate — Ester-name portion derived from methanoic acid.
Ethanoate — Ester-name portion derived from ethanoic acid.
Propanoate — Ester-name portion derived from propanoic acid.
Ethyl ethanoate — An ester formed from ethanol and ethanoic acid.
Ethyl acetate — Common name for ethyl ethanoate.
Volatile — Able to evaporate relatively readily.
Fragrance — A substance or mixture producing a characteristic smell.
Flavouring — A substance used to produce or modify flavour.
Solvent — A substance capable of dissolving another substance.
Catalyst — A substance that increases reaction rate without being permanently consumed.
Reversible reaction — A reaction capable of proceeding in both forward and reverse directions.
Dynamic equilibrium — A state in a reversible reaction where forward and reverse reactions continue at equal rates.
Hydrolysis — Reaction involving water that can break an ester into an alcohol and carboxylic acid.
Triglyceride — A molecule found in fats and oils containing ester linkages formed from glycerol and fatty acids.
Fatty acid — A long-chain carboxylic acid important in fats and oils.
Biodiesel — A fuel containing esters commonly produced from biological oils or fats.
Polyester — A polymer containing repeated ester linkages.
PET — A widely used polyester found in bottles, packaging and synthetic fibres.
Key Takeaways
- Esters contain the –COO– functional group.
- Esters are different from alcohols, which contain –OH.
- Esters are different from carboxylic acids, which contain –COOH.
- Esters can form when a carboxylic acid reacts with an alcohol.
- The reaction is called esterification.
- The general reaction is:
carboxylic acid + alcohol ⇌ ester + water
- Esterification is a condensation reaction because water is produced.
- Esterification is reversible.
- An acid catalyst is commonly used during laboratory esterification.
- Simple ester names contain two parts.
- The first part comes from the alcohol.
- The second part comes from the carboxylic acid.
- Ester naming follows:
alkyl alkanoate
- Methanol gives methyl.
- Ethanol gives ethyl.
- Propanol gives propyl.
- Methanoic acid gives methanoate.
- Ethanoic acid gives ethanoate.
- Propanoic acid gives propanoate.
- Ethanoic acid + ethanol produces ethyl ethanoate.
- Ethanoic acid + methanol produces methyl ethanoate.
- Propanoic acid + ethanol produces ethyl propanoate.
- Many small esters are volatile.
- Many have distinctive fruity or sweet aromas.
- Esters contribute to many natural fruit and flower aromas.
- Natural aromas normally contain mixtures of many compounds.
- Esters are used in flavourings and fragrances.
- Some esters are valuable industrial solvents.
- Ethyl ethanoate is an important solvent.
- Ester groups occur in fats and oils.
- Biodiesel commonly contains ester molecules.
- Polyesters contain repeated ester linkages.
- PET is an important polyester used in bottles and fibres.
- Esters can undergo hydrolysis.
- Hydrolysis can produce a carboxylic acid and an alcohol.
- Functional groups allow chemists to classify compounds and predict their properties and reactions.
The most important reaction is:
carboxylic acid + alcohol ⇌ ester + water
And the most important naming rule is:
alcohol part first + acid part second
For example:
ethanol + ethanoic acid → ethyl ethanoate
Check Your Understanding
1. What functional group identifies an ester?
2. How does the ester functional group differ from the carboxyl group?
3. Name the two types of organic compound needed to make an ester.
4. What is the reaction that produces an ester called?
5. Complete:
carboxylic acid + alcohol ⇌ ______ + ______
6. Why is esterification classified as a condensation reaction?
7. Why is a reversible arrow often used for esterification?
8. What is the purpose of a catalyst during esterification?
9. Which part of an ester name comes from the alcohol?
10. Which part comes from the carboxylic acid?
11. What does methanol become in an ester name?
12. What does ethanol become?
13. What does ethanoic acid become?
14. What does propanoic acid become?
15. Name the ester formed from ethanol and ethanoic acid.
16. Name the ester formed from methanol and ethanoic acid.
17. Name the ester formed from ethanol and propanoic acid.
18. Name the ester formed from propanol and butanoic acid.
19. Which alcohol and acid would produce methyl propanoate?
20. Which alcohol and acid would produce ethyl butanoate?
21. Identify the functional group in:
CH₃COOCH₂CH₃
22. Name:
CH₃COOCH₃
23. Name:
HCOOCH₂CH₃
24. Why can the smell of many small esters be detected easily?
25. Give two uses of esters associated with their distinctive aromas.
26. Why are some esters useful as solvents?
27. What type of biological molecules contain ester linkages and make up many fats and oils?
28. What is a polyester?
29. What is ester hydrolysis?
30. Challenge: A student reacts propanol with ethanoic acid.
a. Identify the functional group in propanol.
b. Identify the functional group in ethanoic acid.
c. State the name of the reaction.
d. State the two products.
e. Determine the alcohol-derived part of the ester name.
f. Determine the acid-derived part of the ester name.
g. Name the ester.
h. State the functional group present in the ester.
i. Explain why water is produced.
j. Explain why this is a condensation reaction.
k. Explain why an acid catalyst may be used.
l. Explain why gentle heating can increase the reaction rate.
m. Explain why a direct flame may be inappropriate when working with volatile organic liquids.
n. Predict whether the ester might have a noticeable odour.
o. Explain why smelling laboratory chemicals directly is unsafe.
p. Name the alcohol and acid that would be produced if the ester underwent hydrolysis.
q. Explain how the structures of the reactants allow you to predict the name of the ester.