PREMIUM REVISION NOTES

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Curriculum: Irish Leaving Certificate (ILC)

Level: Ordinary Level (OL)

Subject: Chemistry

Chapter 7: Organic Chemistry

Version: Complete Chapter File

Prepared By: ExamsLogic Academic Team

1. Learning Objectives

Big idea: In Chapter 7, the fastest route to the answer is usually: spot the functional group → identify the family → predict the properties and reaction type.

2. Chapter 7 Road Map

3. What is Organic Chemistry?

Organic chemistry is the study of carbon compounds. Carbon is special because it can form four covalent bonds and can join to other carbon atoms to make chains, branches and rings.

Organic chemistry = chemistry of carbon compounds
C H H H H Carbon forms 4 covalent bonds
Methane, CH₄, is the simplest example showing carbon’s valency of 4.
Examiner Tip: If asked why carbon forms many compounds, mention both four covalent bonds and carbon-carbon bonding.

4. Functional Groups

A functional group is the atom or group of atoms in an organic molecule that gives that molecule its characteristic chemical reactions.

Functional group = part of the molecule responsible for characteristic reactions
FamilyFunctional Group / FeatureExampleName
AlkaneC–C single bonds onlyCH₄Methane
AlkeneC=CC₂H₄Ethene
AlkyneC≡CC₂H₂Ethyne
Alcohol–OHC₂H₅OHEthanol
Chloroalkane–ClCH₃ClChloromethane
Aldehyde–CHOCH₃CHOEthanal
KetoneC=O within chainCH₃COCH₃Propanone
Carboxylic acid–COOHCH₃COOHEthanoic acid
Ester–COO–CH₃COOCH₂CH₃Ethyl ethanoate
Aromatic compoundBenzene ringC₆H₆Benzene
Examiner Trap: Do not confuse –CHO, –COOH and –COO–. Those three are one of the most common organic-chemistry mix-ups.

5. Naming Rules and Structural Formulae

Organic names are built from the carbon-chain root plus the family ending.

Carbon-chain roots

Carbon atomsRoot
1meth-
2eth-
3prop-
4but-
5pent-

Common endings

EndingFamily
-aneAlkane
-eneAlkene
-yneAlkyne
-olAlcohol
-alAldehyde
-oneKetone
-oic acidCarboxylic acid
Ethanol CH₃–CH₂–OH 2 carbons + –OH = alcohol Chloroethane CH₃–CH₂–Cl 2 carbons + –Cl = chloroalkane
A structural formula makes the functional group much easier to spot.
Worked example: CH₃CH₂OH has 2 carbon atoms, so the root is eth-. It contains –OH, so the ending is -ol. Name = ethanol.
Common Mistake: The correct spelling is ethanol, not “ethaneol”.

6. Tetrahedral Carbon: Alkanes, Alcohols and Chloroalkanes

Alkanes

Alkanes are saturated hydrocarbons. They contain carbon-carbon single bonds only and follow the general formula CnH2n+2.

Alkane general formula = CₙH₂ₙ₊₂
NameFormulaStructural formulaPhysical state at room temperature
MethaneCH₄CH₄Gas
EthaneC₂H₆CH₃–CH₃Gas
PropaneC₃H₈CH₃–CH₂–CH₃Gas
ButaneC₄H₁₀CH₃–CH₂–CH₂–CH₃Gas / easily liquefied
Property reminder: Simple organic compounds are usually insoluble in water but dissolve better in non-polar organic solvents.

Alcohols

Alcohols contain the –OH functional group.

Alcohol functional group = –OH
AlcoholFormulaStructural formulaUse
MethanolCH₃OHCH₃–OHFuel / solvent
EthanolC₂H₅OHCH₃–CH₂–OHSolvent / fuel / drinks chemistry
PropanolC₃H₇OHCH₃–CH₂–CH₂–OHSolvent
ButanolC₄H₉OHCH₃–CH₂–CH₂–CH₂–OHSolvent / fuel interest

Chloroalkanes

Chloroalkanes are formed when a hydrogen atom in an alkane is replaced by chlorine.

NameFormulaStructural formula
ChloromethaneCH₃ClCH₃–Cl
ChloroethaneC₂H₅ClCH₃–CH₂–Cl

7. Planar Carbon: Alkenes, Aldehydes, Ketones, Carboxylic Acids and Esters

Alkenes

Alkenes are unsaturated hydrocarbons containing a C=C double bond. Their general formula is CnH2n.

Alkene general formula = CₙH₂ₙ
NameFormulaStructural formula
EtheneC₂H₄CH₂=CH₂
PropeneC₃H₆CH₃–CH=CH₂
ButeneC₄H₈CH₃–CH₂–CH=CH₂

Aldehydes

Aldehydes contain the –CHO group at the end of the chain.

NameFormulaStructural formula
MethanalHCHOH–CHO
EthanalCH₃CHOCH₃–CHO
PropanalCH₃CH₂CHOCH₃–CH₂–CHO

Ketones

Ketones contain a carbonyl group C=O within the chain.

NameFormulaStructural formula
PropanoneCH₃COCH₃CH₃–CO–CH₃
ButanoneCH₃COCH₂CH₃CH₃–CO–CH₂–CH₃

Carboxylic Acids

Carboxylic acids contain the –COOH group and are weak acids.

NameFormulaCommon note
Methanoic acidHCOOHFound in ant stings
Ethanoic acidCH₃COOHMain acid in vinegar
Propanoic acidCH₃CH₂COOH3-carbon acid

Esters

Esters contain the –COO– group and often have pleasant fruity smells.

Carboxylic acid + Alcohol ⇌ Ester + Water
NameFormulaTypical use
Methyl ethanoateCH₃COOCH₃Solvent / fragrance
Ethyl ethanoateCH₃COOCH₂CH₃Perfumes / flavourings
Examiner Trap: Aldehydes and ketones both contain C=O, but only aldehydes have –CHO at the end of the chain.

8. Aromatic Compounds

Aromatic compounds contain a benzene ring. The three key examples at this level are benzene, methylbenzene and ethylbenzene.

CompoundFormulaDescription / note
BenzeneC₆H₆Parent aromatic hydrocarbon
MethylbenzeneC₆H₅CH₃Also called toluene
EthylbenzeneC₆H₅CH₂CH₃Benzene ring + ethyl side chain
Aromatic Compounds Benzene C₆H₆ Methylbenzene ⬡–CH₃ C₆H₅CH₃ Ethylbenzene ⬡–CH₂CH₃ C₆H₅CH₂CH₃
At OL level, focus on recognition, simple naming and physical properties of the required aromatic examples.
Property note: Aromatic hydrocarbons are usually non-polar, insoluble in water, and better dissolved in organic solvents.

9. Organic Reaction Types

Reaction TypeSimple MeaningTypical Example
SubstitutionOne atom or group is replaced by another.Methane + chlorine in UV light.
AdditionAtoms add across a double bond.Ethene + bromine.
PolymerisationMany small molecules join to form a large molecule.Ethene → poly(ethene).
EliminationAtoms are removed, often forming a double bond.Ethanol → ethene + water.
RedoxOxidation or reduction occurs.Ethanol oxidised to ethanoic acid.
CombustionBurning in oxygen.Hydrocarbon + oxygen → carbon dioxide + water.

Substitution

CH₄ + Cl₂ → CH₃Cl + HCl

One hydrogen atom in methane is replaced by chlorine. This reaction needs UV light.

Addition and Bromine Water

C₂H₄ + Br₂ → C₂H₄Br₂

In an addition reaction, atoms add across the double bond of an alkene.

SubstanceBromine water resultMeaning
AlkaneStays orange/brownNo C=C double bond
AlkeneOrange/brown → colourlessC=C present

Elimination

C₂H₅OH → C₂H₄ + H₂O

Removing water from ethanol forms ethene. This is dehydration, which is an elimination reaction.

Redox and Combustion

Ethanol + oxygen → Ethanoic acid + water
Hydrocarbon + oxygen → carbon dioxide + water

Acid Reactions of Carboxylic Acids

Carboxylic acids behave as weak acids. They react with bases to form salts and water, and with alcohols to form esters.

10. Polymerisation and PVC from Ethene

Polymerisation is the joining of many small molecules called monomers to make a large molecule called a polymer.

n(CH₂=CH₂) → [–CH₂–CH₂–]ₙ

Ethene can first be changed into chloroethene (vinyl chloride), and chloroethene can polymerise to form PVC, poly(chloroethene).

Ethene CH₂=CH₂ chlorination Chloroethene CH₂=CHCl polymerisation PVC [–CH₂–CHCl–]ₙ
A syllabus-friendly route: ethene → chloroethene → PVC.
Examiner Tip: PVC is not made directly from ethene in one step in the way the syllabus usually phrases it. The important named monomer is chloroethene.

11. Organic Natural Products and Extraction Techniques

Many useful organic compounds come from plants. Two common extraction techniques at this level are solvent extraction and steam distillation.

Solvent extraction

  • A suitable solvent dissolves the desired organic compound.
  • The extract is separated from the solid plant material.
  • The solvent can then be evaporated off.

Steam distillation

  • Used for heat-sensitive fragrant oils.
  • Steam carries the volatile oil over.
  • The vapour condenses and the oil is separated.
Examples: perfume oils, flavouring compounds and plant fragrances are often obtained using extraction techniques.

11A. Extra Skills: Alcohols, Indicators and Purification

The syllabus-linked wording also expects a few common laboratory and naming ideas to be understood clearly.

Primary and secondary alcohols

TypeSimple meaningExample
Primary alcoholThe carbon with the -OH group is attached to only one other carbon.Ethanol
Secondary alcoholThe carbon with the -OH group is attached to two other carbons.Propan-2-ol

Indicators often used in chemistry tests

IndicatorWhat it is useful for
PhenolphthaleinCommon in acid-base titrations; colourless in acid and pink in alkali.
Methyl orangeCommon in acid-base titrations; red in acid and yellow in alkali.

Recrystallisation and melting point

Recrystallisation is a way to purify a solid organic product. The solid is dissolved in a suitable hot solvent and then crystals form again as the solution cools.

Recrystallisation hot solvent dissolves the solid cooling crystals form pure solid
Recrystallisation helps separate a purer solid from impurities.
Pure solids usually have a sharp melting point.
Examiner Tip: If a solid melts over a wide range, it is often impure. A pure substance melts sharply.

12. Chromatography

Chromatography separates a mixture because different substances move at different speeds between a stationary phase and a mobile phase.

Paper / thin-layer ideas

TLC — Thin-Layer Chromatography

In TLC, the stationary phase is a thin coating on a plate rather than paper. It usually gives sharper separations.

Chromatogram baseline Key idea Different substances travel different distances because they have different attractions to the phases
More strongly retained substances move less; more soluble substances move further with the solvent.
Uses: inks, dyes, plant pigments, food colourings and forensic samples can all be separated by chromatography.

13. Instrumentation: GC, HPLC and Mass Spectrometry

TechniqueSimple purposeTypical use
GC (Gas Chromatography)Separates volatile substancesfuel mixtures, fragrances, solvents
HPLCSeparates substances in liquid mixturesdrugs, food components, biological samples
Mass spectrometryGives information about particle massesidentification of unknown compounds

GC

Useful for volatile organic mixtures. Different components leave at different times.

HPLC

Useful for dissolved samples where gas chromatography would not suit the sample.

Mass spectrometry

Helps identify compounds by their mass patterns.

Forensic and analytical uses: checking drugs, explosives residues, fuel samples, perfumes, food flavourings and unknown organic liquids.

14. Worked Examples

Example 1: CH₃COOH contains the functional group –COOH, so it belongs to the carboxylic acid family and is called ethanoic acid.
Example 2: CH₂=CH₂ contains a C=C bond, so it is an alkene called ethene. It decolourises bromine water.
Example 3: CH₃CH₂OH contains –OH, so it is an alcohol called ethanol. It can be oxidised to ethanoic acid.
Example 4: Ethanol can lose water to form ethene. This is elimination because atoms are removed and a double bond is formed.

15. Examiner Secrets, Mistakes and Traps

Examiner Secret: Organic questions often look hard only because of the names. If you identify the functional group first, the question usually becomes much easier.
Common Mistake: Mixing up ethanol (CH₃CH₂OH) and ethanoic acid (CH₃COOH).
Common Mistake: Forgetting that alkenes decolourise bromine water but alkanes do not.
Examiner Trap: PVC is linked to chloroethene, not just any chlorine-containing compound.
Examiner Trap: Esters and carboxylic acids both contain oxygen, but only carboxylic acids have –COOH.

16. Final Revision Sheet

FamilyMust-know featureMust-know reaction / test
AlkaneC–C single bondsSubstitution with chlorine in UV light
AlkeneC=CDecolourises bromine water
AlkyneC≡CUnsaturated hydrocarbon
Alcohol–OHOxidation / elimination
Chloroalkane–ClSubstitution-type compound
Aldehyde–CHOCan be oxidised further
KetoneC=O inside chainRecognise by structure
Carboxylic acid–COOHWeak acid; forms esters
Ester–COO–Fruity smell
Aromatic compoundBenzene ringRecognise benzene, methylbenzene, ethylbenzene

17. Self-Assessment Checklist

18. Mixed Exam Practice Questions

  1. State what is meant by a functional group.
  2. Name the family and functional group in CH₃CH₂OH.
  3. What observation shows that a compound contains a carbon-carbon double bond?
  4. Write an equation showing methane reacting with chlorine in UV light.
  5. Explain what is meant by elimination using ethanol as an example.
  6. Name the compounds CH₃CHO, CH₃COCH₃ and CH₃COOH.
  7. Write a word equation for ester formation.
  8. What is the monomer used to form PVC?
  9. State one difference between solvent extraction and steam distillation.
  10. Give one use of chromatography in analysis or forensics.

Mark Scheme

1. Atom/group responsible for characteristic organic reactions. 2. Alcohol, –OH. 3. Bromine water decolourises from orange/brown to colourless. 4. CH₄ + Cl₂ → CH₃Cl + HCl. 5. Removal of water from ethanol to form ethene / double bond formed. 6. Ethanal, propanone, ethanoic acid. 7. Carboxylic acid + alcohol ⇌ ester + water. 8. Chloroethene. 9. Solvent extraction uses a solvent; steam distillation uses steam for volatile oils. 10. Any valid example: inks, drugs, explosives residue, perfumes, food dyes, unknown mixtures.