PREMIUM REVISION NOTES

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Curriculum: Irish Leaving Certificate (ILC)

Level: Ordinary Level (OL)

Subject: Chemistry

Chapter: 1 – Periodic Table and Atomic Structure

Version: Complete compiled chapter with missing syllabus content added

Prepared By: ExamsLogic Academic Team

Chapter Overview

This complete chapter brings together the content from all four chapter parts and fills the syllabus gaps so the notes now cover the full Ordinary Level Chapter 1 specification.

1.1 Periodic Table 1.2 Atomic Structure 1.3 Radioactivity 1.4 Electronic Structure 1.5 Oxidation & Reduction Mandatory Experiment 1.1 Mandatory Experiment 1.2
Added to close syllabus gaps: symbols 1–36, main-group similarities, Li/Na/K reaction with water, conservation of mass, carbon-12 scale, use of the mass spectrometer, history of atomic theory, history of radioactivity, widespread occurrence of radioactivity, food irradiation, atomic radii trends, screening effect, electrochemical series, electrolysis, ionic movement, rusting, electroplating and purification of copper, and the full detail of the two mandatory experiments.

Contents

1.1 Periodic Table 1.2 Atomic Structure 1.3 Radioactivity 1.4 Electronic Structure of Atoms 1.5 Oxidation and Reduction Mandatory Experiments Exam Practice Last-Minute Revision Sheet

1.1 Periodic Table

Learning Objectives

Why the Periodic Table Matters

The periodic table is a chart of elements arranged to show repeating patterns in their physical and chemical properties. It is useful because it does two jobs at the same time:

Examiner Secret: if you are asked why the periodic table is useful, mention both organisation and prediction of properties.

Symbols of Elements 1–36

Atomic No.SymbolNameAtomic No.SymbolName
1HHydrogen19KPotassium
2HeHelium20CaCalcium
3LiLithium21ScScandium
4BeBeryllium22TiTitanium
5BBoron23VVanadium
6CCarbon24CrChromium
7NNitrogen25MnManganese
8OOxygen26FeIron
9FFluorine27CoCobalt
10NeNeon28NiNickel
11NaSodium29CuCopper
12MgMagnesium30ZnZinc
13AlAluminium31GaGallium
14SiSilicon32GeGermanium
15PPhosphorus33AsArsenic
16SSulfur34SeSelenium
17ClChlorine35BrBromine
18ArArgon36KrKrypton
OL Focus: know the symbols well enough to recognise them in formulas and simple equations.

Development of the Periodic Table

ScientistMain IdeaWhy It Matters
GreeksEarly ideas about matter and the elements.Important as the starting point in the history of scientific thought.
Robert BoyleHelped define an element as a substance that cannot be broken down chemically into simpler substances.Moved chemistry away from vague classical ideas.
Humphry DavyUsed electrolysis to isolate elements such as sodium and potassium.Showed that new elements could be discovered by experiment.
DöbereinerGrouped similar elements into triads.Showed that some properties repeat.
NewlandsArranged elements by increasing atomic mass and suggested the Law of Octaves.Recognised a repeating pattern, but it did not work for all elements.
MendeleevArranged elements mainly by increasing atomic mass and left gaps for missing elements.Predicted properties of undiscovered elements correctly.
MoseleyShowed that elements should be arranged by atomic number.Led to the modern periodic table.

Groups and Periods

Group

A group is a vertical column. Elements in the same group have similar chemical properties because they have the same number of outer electrons.

Period

A period is a horizontal row. As you move across a period, element properties change gradually in a repeating pattern.

Examiner Trap: a group is vertical and a period is horizontal.

Main Group Similarities

GroupWhat They Are LikeOrdinary Level Points to Know
Alkali metals (Group 1)Soft, reactive metalsHave 1 outer electron, form +1 ions, react with water.
Alkaline earth metals (Group 2)Reactive metalsHave 2 outer electrons, form +2 ions, less reactive than Group 1.
Halogens (Group 17)Reactive non-metalsHave 7 outer electrons, form -1 ions, become less reactive down the group.
Noble gases (Group 18)Very unreactive gasesHave full outer shells and are stable.

Simple Trends the Table Shows

Reaction with Water: Lithium, Sodium and Potassium

The syllabus specifically expects awareness of the reaction of lithium, sodium and potassium with water.

MetalWhat You SeeMain Idea
LithiumFloats, fizzes gently, moves slowly.Reactive, but the least reactive of the three.
SodiumFloats, fizzes strongly, melts into a ball and moves quickly.More reactive than lithium.
PotassiumVery vigorous, often ignites with a lilac flame.Most reactive of the three.
2M + 2H₂O → 2MOH + H₂     (where M = Li, Na or K)
Key conclusion: reactivity increases down Group 1.

1.2 Atomic Structure

Atoms, Molecules and Ions

Matter is made of tiny particles. These particles may be atoms, molecules or ions.

Atoms are extremely small. Even though they are tiny, they explain why substances have mass, occupy space and react chemically.

Law of Conservation of Mass

In a chemical reaction, mass is conserved. This means the total mass of the reactants is equal to the total mass of the products, provided nothing escapes from the system.

Total mass before reaction = Total mass after reaction
Why this matters: atoms are rearranged in reactions, but they are not created or destroyed in ordinary chemical changes.

Subatomic Particles

ParticleRelative ChargeRelative MassLocation
Proton+11Nucleus
Neutron01Nucleus
Electron-1Very small / about 1/1836Outside nucleus in energy levels

Atomic Number, Mass Number and Isotopes

Atomic number (Z) = number of protons
Mass number (A) = protons + neutrons
Neutrons = mass number − atomic number

Isotopes are atoms of the same element with the same number of protons but different numbers of neutrons.

Hydrogen isotopes

  • Hydrogen-1: 1 proton, 0 neutrons
  • Hydrogen-2: 1 proton, 1 neutron
  • Hydrogen-3: 1 proton, 2 neutrons

Carbon isotopes

  • Carbon-12: 6 protons, 6 neutrons
  • Carbon-14: 6 protons, 8 neutrons

Relative Atomic Mass (Ar)

The relative atomic mass of an element is the weighted average mass of its atoms compared with 1/12 of the mass of a carbon-12 atom.

Carbon-12 scale: the carbon-12 isotope is the reference used for relative atomic masses.
Examiner Trap: mass number is for one isotope only, but relative atomic mass is an average value found on the periodic table.

Historical Development of Atomic Theory

ScientistMain Contribution
DaltonSuggested matter is made of tiny atoms.
ThomsonDiscovered the electron and showed atoms contain negative particles.
RutherfordShowed that the atom has a tiny dense nucleus using the alpha-particle scattering experiment.
BohrSuggested electrons move in fixed energy levels around the nucleus.

Use of the Mass Spectrometer

A mass spectrometer is used to help determine relative atomic mass by separating particles according to their mass-to-charge ratio. At Ordinary Level you do not need the full theory, but you should know its use.

What it is used for

  • Finding the relative atomic mass of an element
  • Showing that isotopes exist
  • Comparing the abundance of isotopes

OL summary

Different isotopes give different peaks, and the combined data can be used to work out the average relative atomic mass.

1.3 Radioactivity

Definition

Radioactivity is the spontaneous emission of radiation from unstable nuclei. “Spontaneous” means it happens by itself and is not controlled by ordinary chemical reactions.

Alpha, Beta and Gamma Radiation

TypeNatureChargePenetrating PowerExample Emitter
Alpha (α)Helium nucleus+2Low; stopped by paper or skinAmericium-241 (²⁴¹Am)
Beta (β)Fast-moving electron-1Medium; stopped by thin aluminiumCarbon-14 (¹⁴C)
Gamma (γ)Electromagnetic radiation0High; reduced by thick lead or concreteCobalt-60 (⁶⁰Co)
Penetration order: alpha < beta < gamma.
Common Mistake: gamma is the most penetrating, but not the most ionising.

Half-Life

The half-life of a radioactive substance is the time taken for half the radioactive nuclei in a sample to decay. For the syllabus, treat this idea qualitatively rather than mathematically.

History of Radioactivity

ScientistContribution
BecquerelDiscovered radiation from uranium salts.
Marie CurieWorked on radioactivity and helped discover new radioactive elements.
Pierre CurieWorked with Marie Curie in the study of radioactivity.

Marie and Pierre Curie discovered polonium and radium.

Widespread Occurrence of Radioactivity

Radioactivity is not rare. It occurs naturally in rocks, soil, space radiation and some foods. Small amounts of natural background radiation are always present around us.

Uses of Radioisotopes

Radioisotope / UseApplication
Carbon-14Age determination of archaeological remains and old organic materials.
Cobalt-60Cancer treatment using gamma radiation.
Food irradiationKilling microorganisms and increasing storage life of some foods.

Detection and Penetrating Power

The syllabus expects awareness that the properties of radiation can be demonstrated using a radiation source and detector. The principle of the Geiger–Müller tube is not required.

Examiner Trap: radioactivity is a nuclear change, not a chemical one.

1.4 Electronic Structure of Atoms

Energy Levels

Electrons are arranged in energy levels, also called shells, around the nucleus. For Ordinary Level you should know the shell arrangements of elements 1–20.

Electron Configurations 1–20

ElementConfigurationOuter ElectronsTypical Group Link
H11Group 1-type behavior
He22Noble gas stability
Li2,11Group 1
Be2,22Group 2
B2,33Group 13
C2,44Group 14
N2,55Group 15
O2,66Group 16
F2,77Group 17
Ne2,88Group 18
Na2,8,11Group 1
Mg2,8,22Group 2
Al2,8,33Group 13
Si2,8,44Group 14
P2,8,55Group 15
S2,8,66Group 16
Cl2,8,77Group 17
Ar2,8,88Group 18
K2,8,8,11Group 1
Ca2,8,8,22Group 2

Why Elements in the Same Group Behave Similarly

The chemical properties of an element depend mainly on its outer electrons. That is why sodium and potassium are similar, and chlorine and bromine are similar.

Atomic Radii and Trends

TrendWhat HappensReason
Down a groupAtomic radius increasesExtra shells are added, so the outer electrons are farther from the nucleus.
Across a periodAtomic radius decreasesNuclear charge increases while electrons are added to the same main shell, so the nucleus pulls the electrons in more strongly.

Screening Effect and Nuclear Charge

Screening effect means inner electrons reduce the pull of the nucleus on outer electrons. Nuclear charge is the positive pull from the protons in the nucleus.

Applications: Sodium Street Lights and Fireworks

When electrons absorb energy, they move to higher energy levels. When they fall back, they emit light of particular colours.

1.5 Oxidation and Reduction

Basic Meaning

At Ordinary Level, oxidation and reduction are explained in terms of electron transfer.

Oxidation = loss of electrons
Reduction = gain of electrons
Memory trick: OIL RIG = Oxidation Is Loss, Reduction Is Gain.

Simple Redox Examples

Oxidising and Reducing Agents

TypeWhat It DoesWhat Happens to It
Oxidising agentCauses oxidation by accepting electronsItself gets reduced
Reducing agentCauses reduction by donating electronsItself gets oxidised

Electrochemical Series

The electrochemical series is a list of metals arranged in order of how easily they are oxidised. More reactive metals lose electrons more easily.

K > Na > Ca > Mg > Al > Zn > Fe > Pb > H > Cu > Ag > Au

At this level, you mainly use it to explain simple displacement reactions.

Electrolysis of Copper Sulfate with Copper Electrodes

At the anode (+)

Copper atoms lose electrons and enter solution as Cu²⁺ ions.

Cu → Cu²⁺ + 2e⁻

At the cathode (−)

Copper ions gain electrons and are deposited as copper metal.

Cu²⁺ + 2e⁻ → Cu

The copper concentration stays nearly the same because copper dissolves at one electrode and is deposited at the other.

Electrolysis of Acidified Water with Inert Electrodes

Hydrogen is formed at the cathode and oxygen is formed at the anode.

The gases are produced in a 2:1 volume ratio of hydrogen to oxygen.

Ionic Movement

In electrolysis, positive ions move to the cathode and negative ions move to the anode.

Applications and Social Aspects

TopicMain Idea
Rusting of ironIron reacts with oxygen and water to form rust. This is corrosion.
Swimming-pool water treatmentChlorine-based chemicals act as oxidising agents to kill microorganisms.
Use of scrap iron to extract copperIron, being more reactive, displaces copper from copper ion solution.
ElectroplatingA thin layer of one metal is placed onto another by electrolysis.
Purification of copperElectrolysis removes impurities and gives very pure copper.
Chrome and nickel platingUsed for protection and appearance.
CutleryOften plated for appearance and resistance to corrosion.

Mandatory Experiments

Experiment 1.1 – Flame Tests

Aim: identify metal ions from the colour they give in a flame.

Ion / SaltFlame Colour
LithiumCrimson red
SodiumYellow / yellow-orange
PotassiumLilac
BariumApple green
StrontiumRed
CopperBlue-green / green

Method

  1. Clean a nichrome wire by dipping it in hydrochloric acid and heating it until no colour appears.
  2. Dip the wire into the sample.
  3. Place it in the non-luminous Bunsen flame.
  4. Observe and record the flame colour.

Why colours appear

Electrons are excited by heat and then fall back to lower energy levels, releasing light of characteristic colours.

Exam tip: sodium contamination is common and can hide other colours.

Experiment 1.2 – Redox Reactions of Group VII Elements and Metal Displacement

Aim: show that halogens act as oxidising agents and that more reactive metals displace less reactive metals from solution.

Part A: Halogens as Oxidising Agents

Test halogen solutions with bromides, iodides, Fe²⁺ and sulfites.

Reaction TypeExampleWhat to Notice
Halogen displaces bromineCl₂ + 2Br⁻ → 2Cl⁻ + Br₂Brown/orange bromine appears.
Halogen displaces iodineCl₂ + 2I⁻ → 2Cl⁻ + I₂Brown iodine appears.
Oxidation of Fe²⁺Cl₂ oxidises Fe²⁺ to Fe³⁺Shows halogen is an oxidising agent.
Oxidation of sulfiteCl₂ oxidises SO₃²⁻ to sulfateAgain shows halogen is an oxidising agent.
2Br⁻ − 2e⁻ → Br₂

Only half-equation level detail such as the one above is needed at OL.

Part B: Displacement Reactions of Metals

ReactionMeaning
Zn + Cu²⁺ → Zn²⁺ + CuZinc is more reactive than copper, so zinc displaces copper.
Mg + Cu²⁺ → Mg²⁺ + CuMagnesium is more reactive than copper, so magnesium displaces copper.
Main conclusion: the more reactive species is more easily oxidised.

Interactive Simulators / Virtual Activities

Exam Practice Questions

Q1. State two reasons why the periodic table is useful. [2]

Q2. Explain one difference between Mendeleev’s table and the modern periodic table. [2]

Q3. Name the scientist associated with each of the following: atomic number, Law of Octaves, alpha-particle scattering, discovery of radiation from uranium salts. [4]

Q4. Define atomic number and mass number. [4]

Q5. Carbon-14 and carbon-12 are isotopes. Explain why. [3]

Q6. State the relative charge, relative mass and location of a proton, neutron and electron. [9]

Q7. What is meant by the law of conservation of mass? [2]

Q8. Name one alpha emitter, one beta emitter and one gamma emitter from the syllabus. [3]

Q9. Which type of radiation is most penetrating? Which is most ionising? [2]

Q10. State one use each of carbon-14 and cobalt-60. [2]

Q11. Write the electronic configurations of sodium, chlorine and calcium. [3]

Q12. Explain why potassium is more reactive than lithium. [3]

Q13. Define oxidation and reduction in terms of electron transfer. [4]

Q14. In the reaction Zn + Cu²⁺ → Zn²⁺ + Cu, identify the oxidised substance and the reduced substance. [4]

Q15. Give the flame colours for sodium, potassium and copper. [3]

MCQs with Answers

1. Which scientist arranged elements by atomic number?
A. Dalton   B. Moseley   C. Davy   D. Thomson
Answer: B

2. Which particle has relative mass 1 and charge 0?
A. Electron   B. Proton   C. Neutron   D. Ion
Answer: C

3. Which radiation is stopped by paper?
A. Alpha   B. Beta   C. Gamma   D. X-rays
Answer: A

4. Which group contains the halogens?
A. 1   B. 2   C. 17   D. 18
Answer: C

5. Which process can be used to purify copper?
A. Neutralisation   B. Electrolysis   C. Filtration   D. Distillation
Answer: B

Mark Scheme / Answer Guide

Q1. Any two: organises elements [1]; shows patterns [1]; predicts properties [1].

Q2. Mendeleev arranged mainly by atomic mass [1]; modern table by atomic number [1].

Q3. Atomic number – Moseley [1]; Law of Octaves – Newlands [1]; alpha-particle scattering – Rutherford [1]; uranium-salt radiation – Becquerel [1].

Q4. Atomic number = number of protons [2]. Mass number = protons + neutrons [2].

Q5. Same number of protons [1]; different numbers of neutrons [1]; therefore different mass numbers [1].

Q6. Proton: +1, mass 1, nucleus. Neutron: 0, mass 1, nucleus. Electron: -1, very small mass / 1/1836, outside nucleus in energy levels. [9 total]

Q7. Total mass of reactants equals total mass of products [2].

Q8. α: ²⁴¹Am [1]; β: ¹⁴C [1]; γ: ⁶⁰Co [1].

Q9. Most penetrating: gamma [1]. Most ionising: alpha [1].

Q10. Carbon-14: age determination [1]. Cobalt-60: cancer treatment [1].

Q11. Na 2,8,1 [1]; Cl 2,8,7 [1]; Ca 2,8,8,2 [1].

Q12. Potassium has an outer electron farther from the nucleus [1]; more screening [1]; easier to lose an electron, so more reactive [1].

Q13. Oxidation = loss of electrons [2]. Reduction = gain of electrons [2].

Q14. Zinc is oxidised [2]; copper ion is reduced [2].

Q15. Sodium yellow [1]; potassium lilac [1]; copper blue-green / green [1].

Last-Minute Revision Sheet

Self-Assessment Checklist