ExamsLogic watermark
Higher Level Revision Notes

Leaving Cert Higher Level Chemistry

Leaving Cert Higher Level Chemistry Chapter 7: Organic Chemistry

You learn the main functional groups, the common reactions of organic compounds, and how to identify or make useful molecules.

What this page doesTurns a difficult chapter into clear notes, diagrams, and one simple interactive tool.
Student promisePlain English first, exam language second.
Curriculum
Irish Leaving Certificate (ILC)
Level
Higher Level
Subject
Chemistry
Chapter
Chapter 7 — Organic Chemistry

Simple English Summary

You learn the main functional groups, the common reactions of organic compounds, and how to identify or make useful molecules.

Teacher voice: Read the ideas first, then use the detailed notes and diagrams to lock in the exam wording.

What To Focus On

  • Recognise the major functional groups.
  • Follow addition, substitution, and elimination.
  • Understand polymer formation and chromatography.
  • Use simple organic reaction pathways.
DisclaimerThis publication is an independent educational resource developed by ExamsLogic and compiled for student revision. It is based on publicly available official curricula and is not endorsed by any examination board.

Quick Simpler Start

In one sentence

You learn the main functional groups, the common reactions of organic compounds, and how to identify or make useful molecules.

Exam habit

When you revise this chapter, ask yourself: "Can I explain this to a friend in one easy paragraph?" If yes, you are in a good place.

Interactive Simulator

This small tool gives you a quick visual check before you move deeper into the chapter notes.

Simulator

Functional Group Trainer

Pick a compound family and the tool gives the simple exam meaning.

Choose a family to see the reaction idea.

1. Learning Objectives

  • Recognise and name the main organic functional groups at Higher Level.
  • Distinguish between tetrahedral carbon and planar carbon.
  • Draw and name structures of alcohols, chloroalkanes, aldehydes, ketones, carboxylic acids and esters.
  • Classify reactions as substitution, addition, elimination, esterification, hydrolysis and redox.
  • Explain HL mechanisms: free radical substitution and ionic addition.
  • Understand aromatic compounds, especially benzene.
  • Explain physical properties, boiling point trends and solubility.
  • Interpret GC, HPLC, mass spectrometry, IR and UV absorption at HL level.

2. Functional Groups: The Organic Chemistry Map

FamilyFunctional groupExampleKey property
Alcohol-OHEthanol, C2H5OHCan form hydrogen bonds; small alcohols are water-soluble.
ChloroalkaneC-ClChloroethaneOften reacts by substitution.
Aldehyde-CHOEthanalOxidised to carboxylic acid.
KetoneC=O within chainPropanoneLess easily oxidised than aldehydes.
Carboxylic acid-COOHEthanoic acidWeak acid; reacts with alcohols to form esters.
Ester-COO-Ethyl ethanoateFruity smell; formed by esterification.
Examiner Tip: The functional group controls most of the chemical behaviour. Once you identify it, the reaction pattern usually becomes much easier.

3. Tetrahedral Carbon and Planar Carbon HL

Tetrahedral Carbon

Carbon with four single bonds is tetrahedral. This is typical of alkanes, alcohols and chloroalkanes.

Examples: methane, ethanol, chloroethane

Planar Carbon

Carbon involved in a double bond is planar. This is found in alkenes, aldehydes, ketones, carboxylic acids and esters.

Examples: ethene, ethanal, propanone, ethanoic acid
Type of carbonBondingShape around carbonTypical families
Tetrahedral carbonFour single bondsTetrahedralAlkanes, alcohols, chloroalkanes
Planar carbonContains C=C or C=OTrigonal planar around that carbonAlkenes, aldehydes, ketones, acids, esters
Examiner Trap: Not all carbon atoms in a molecule have the same geometry. One carbon may be tetrahedral while another is planar.

4. Nomenclature and Structural Formulae

Carbon numberStemAlkaneAlcoholCarboxylic acid
1meth-methanemethanolmethanoic acid
2eth-ethaneethanolethanoic acid
3prop-propanepropanolpropanoic acid
4but-butanebutanolbutanoic acid
Worked Example: Name CH3CH2COOH.
Step 1: Count carbons = 3 → prop-.
Step 2: Functional group = -COOH → carboxylic acid.
Answer: propanoic acid.
Common Mistake: The carbon in the -COOH group counts as part of the main carbon chain.

5. Physical Properties and Solubility

FamilyMain intermolecular forceBoiling point trendWater solubility
AlcoholsHydrogen bondingHigher than similar alkanesSmall members quite soluble
ChloroalkanesDipole-dipole + dispersionHigher than corresponding alkanesPoor to low solubility
Aldehydes / ketonesDipole-dipoleModerateSmall members reasonably soluble
Carboxylic acidsStrong hydrogen bondingHighLower members soluble
EstersDipole-dipoleLower than acidsUsually limited solubility
Rule of thumb: As carbon chain length increases, water solubility usually decreases because the non-polar hydrocarbon part becomes more dominant.

6. Aromatic Compounds HL

Aromatic compounds contain a benzene ring. Benzene has formula C6H6 and is often shown as a hexagon with a circle inside, representing delocalised electrons.

HL Note: Benzene is more stable than expected because its electrons are delocalised. That is why benzene does not behave like a normal alkene.
CompoundFormulaComment
BenzeneC6H6Parent aromatic compound
MethylbenzeneC6H5CH3Also called toluene
EthylbenzeneC6H5C2H5Aromatic side-chain compound

7. Reaction Types

Reaction typeMeaningCommon example
SubstitutionOne atom or group replaces another.Methane reacts with chlorine in UV light.
AdditionAtoms add across a double bond.Ethene reacts with bromine.
EliminationA small molecule is removed, often forming a double bond.Ethanol → ethene + water.
RedoxOxidation and reduction occur.Alcohol oxidised to aldehyde or acid.
EsterificationAcid + alcohol forms ester + water.Ethanoic acid + ethanol.
HydrolysisBond broken by water.Ester hydrolysis.

8. Chloroalkanes, Alcohols, Aldehydes, Ketones, Acids and Esters

Chloroalkanes

Chloroalkanes are important because they undergo substitution reactions and can be made from alkanes or alkenes in different ways.

Alcohols

Alcohols contain the -OH group and may be oxidised or dehydrated.

Ethanol → Ethanal → Ethanoic acid

Aldehydes and Ketones

Aldehydes contain the -CHO group and are more easily oxidised than ketones. Ketones contain the carbonyl group inside the chain.

Carboxylic acids

Carboxylic acids are weak acids and react with alcohols to form esters.

Esters

Esters are usually pleasant-smelling compounds formed by esterification.

9. Important Organic Reactions

Addition

CH2=CH2 + Br2 → CH2BrCH2Br

Alkenes decolourise bromine water, which is a key test for unsaturation.

Free radical substitution HL

CH4 + Cl2 → CH3Cl + HCl

This occurs in UV light and proceeds by initiation, propagation and termination steps.

Ionic addition HL

Alkenes undergo ionic addition when electrophiles add across the C=C bond.

Elimination

C2H5OH → C2H4 + H2O

Removing water from an alcohol forms an alkene.

Esterification

Ethanoic acid + ethanol ⇌ ethyl ethanoate + water

Base hydrolysis of esters

When an ester reacts with aqueous base, the products are an alcohol and the salt of a carboxylic acid.

Oxidation and reduction

Primary alcohols may be oxidised to aldehydes and then to acids. Reduction reverses the direction in many simple organic schemes.

Examiner Tip: In organic schemes, always track the functional group change first. That usually tells you the reaction type immediately.

10. Basic Organic Synthesis and PVC

Higher Level questions often connect several steps together in short synthesis routes.

StartStepProduct
EtheneAddition of H2OEthanol
EthanolOxidationEthanal / ethanoic acid
Ethanoic acid + ethanolEsterificationEthyl ethanoate

PVC from ethene

Ethene → chloroethene (vinyl chloride) → poly(chloroethene) / PVC

This is a required Higher Level industrial-organic link.

11. Organic Natural Products and Extraction Techniques

Organic natural products may be extracted from plants and other natural sources.

TechniqueUseIdea
Solvent extractionSeparating desired organic substancesUses difference in solubility
Steam distillationExtracting essential oilsUseful for temperature-sensitive compounds
Example: Steam distillation can be used to isolate essential oils from plant material without heating them to very high temperatures.

12. Instrumentation HL

Chromatography

MethodMain use
GCSeparating volatile organic compounds
HPLCSeparating less volatile compounds

Mass Spectrometry

Gives molecular mass and fragmentation pattern information.

IR Spectrometry

Used to identify functional groups from characteristic bond absorptions.

UV Absorption Spectrometry

Useful for compounds that absorb ultraviolet light, especially in conjugated systems.

HL Note: At this level, the exam focus is usually what each technique is for, not deep instrument engineering detail.

13. Quick Comparison Table

FamilyMain reaction tendencyUseful exam clue
AlkenesAdditionDecolourise bromine water
AlkanesSubstitutionNeed UV light with chlorine
AlcoholsOxidation / elimination-OH group
AldehydesOxidation-CHO group
Carboxylic acidsEsterification-COOH group
EstersHydrolysisFruity smell

14. Examiner Secrets, Mistakes and Traps

Secret 1: Functional group first, name second, reaction type third.
Secret 2: If a question mentions C=C, think addition. If it mentions -COOH plus alcohol, think esterification.
Common Mistake: Mixing up aldehydes and ketones. Aldehydes have -CHO at the end of the chain.
Common Mistake: Forgetting that longer hydrocarbon chains usually lower water solubility.
Examiner Trap: Benzene is not treated like an ordinary alkene. Delocalisation makes it behave differently.

15. Last-Minute Revision Sheet

  • Tetrahedral carbon = four single bonds.
  • Planar carbon = carbon in C=C or C=O environment.
  • Alcohols, chloroalkanes, aldehydes, ketones, acids and esters are the key HL families.
  • Small polar molecules are more water-soluble than larger ones.
  • Alkenes undergo addition; alkanes undergo substitution.
  • Esterification forms ester + water.
  • Base hydrolysis breaks esters into alcohol + carboxylate salt.
  • PVC comes from chloroethene.
  • Steam distillation and solvent extraction are key natural-product methods.
  • GC, HPLC, MS, IR and UV must be recognised by purpose.

16. Self-Assessment Checklist

  • I can distinguish tetrahedral carbon from planar carbon.
  • I can identify and name the main functional groups.
  • I can explain addition, substitution, elimination, esterification and hydrolysis.
  • I can compare aldehydes, ketones, acids and esters.
  • I can explain PVC formation from ethene.
  • I can describe steam distillation and solvent extraction.
  • I can recognise the purpose of GC, HPLC, mass spectrometry, IR and UV.