Quick Simpler Start
You learn how atoms are built, how the periodic table is organised, why isotopes matter, and how radioactivity is described in simple scientific language.
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.
Atom Builder
Type in the atomic number and number of neutrons. The tool builds the neutral atom for you in plain language.
Chapter 1: Periodic Table and Atomic Structure
1. Learning Objectives
- Describe the development of the periodic table from Döbereiner to Moseley.
- Compare Mendeleev's periodic table with the modern periodic table.
- Identify protons, neutrons and electrons by charge, mass and location.
- Use atomic number and mass number to calculate protons, neutrons and electrons.
- Explain isotopes and describe important radioisotope uses.
- Compare alpha, beta and gamma radiation.
- Write electron configurations for the first 36 elements.
- HLExplain orbitals, sublevels, Aufbau, Hund's Rule, Pauli Exclusion Principle and Heisenberg's Uncertainty Principle.
- Explain oxidation and reduction in terms of electron transfer.
- HLUse oxidation numbers and balance redox equations.
2. The Development of the Periodic Table
The periodic table was not created in one step. It developed as scientists found better ways to arrange elements according to their properties and atomic structure.
Mendeleev vs Modern Periodic Table
| Mendeleev's Table | Modern Periodic Table |
|---|---|
| Elements mainly arranged by increasing atomic mass. | Elements arranged by increasing atomic number. |
| Gaps were left for undiscovered elements. | Elements fit according to proton number and electronic structure. |
| Some elements were placed out of strict mass order to match chemical properties. | Groups show similar properties because elements have similar outer electron arrangements. |
| Noble gases were not originally included. | Noble gases are placed in Group 18/Group 0. |
3. Atomic Structure
Atoms are made of three main subatomic particles: protons, neutrons and electrons.
| Particle | Relative Charge | Relative Mass | Location |
|---|---|---|---|
| Proton | +1 | 1 | Nucleus |
| Neutron | 0 | 1 | Nucleus |
| Electron | −1 | Very small / 1/1836 | Shells around nucleus |
Atomic Number, Mass Number and Isotopes
Protons = 11
Electrons = 11 in a neutral atom
Neutrons = 23 − 11 = 12
Isotopes are atoms of the same element with the same number of protons but different numbers of neutrons.
HL Only Brief History of Atomic Theory
| Scientist | Main Contribution | Why it matters |
|---|---|---|
| Dalton | Suggested matter is made of tiny atoms. | First modern atomic theory model. |
| Thomson | Discovered the electron. | Showed atoms are divisible. |
| Rutherford | Gold-foil experiment led to nuclear model. | Atoms have a tiny dense nucleus. |
| Bohr | Electrons occupy fixed energy levels. | Helped explain line spectra. |
| Wave-mechanical model | Electrons described by probability orbitals. | Better HL model than simple circular shells. |
HL Only Relative Atomic Mass and Isotopic Abundance
For HL, relative atomic mass is based on the carbon-12 scale. In real samples, the value of Ar depends on the abundance of each isotope.
Ar = (35 × 75 + 37 × 25) / 100 = 35.5
HL Only Mass Spectrometer
A mass spectrometer is used to identify isotopes and determine relative atomic mass. It separates particles according to their mass-to-charge ratio, often written as m/z.
| Stage | What happens? | Purpose |
|---|---|---|
| Vaporisation | Sample is converted to a gas. | Particles must be in gas phase. |
| Ionisation | Gas particles are bombarded so positive ions form. | Only charged particles can be accelerated and detected. |
| Acceleration | Ions are accelerated by an electric field. | Gives ions kinetic energy. |
| Deflection | Ions are bent by a magnetic field. | Lighter ions or ions with bigger charge are deflected more. |
| Detection | Ions strike detector and produce a signal. | Creates a mass spectrum. |
4. Radioactivity
Radioactivity is the spontaneous emission of radiation from unstable nuclei. The three main types are alpha, beta and gamma radiation.
| Radiation | Nature | Charge | Penetration | Ionising Power |
|---|---|---|---|---|
| Alpha (α) | Helium nucleus | +2 | Low | High |
| Beta (β) | Fast electron | −1 | Medium | Medium |
| Gamma (γ) | Electromagnetic radiation | 0 | High | Low |
Half-Life
Half-life is the time taken for half of the radioactive nuclei in a sample to decay, or for the activity to fall to half its original value.
80 g → 40 g → 20 g = 2 half-lives
Time = 2 × 5730 = 11,460 years.
Radioisotopes and Uses
Carbon-14
Used in archaeological dating of once-living materials.
Cobalt-60
Used in radiotherapy and sterilising medical equipment.
Tracers
Radioisotopes can track movement of substances in industry and medicine.
HL Only Nuclear Equations and Nuclear vs Chemical Change
In a chemical reaction, electrons are rearranged. In a nuclear reaction, the nucleus changes, so a new element may form.
| Type | What changes? | Example |
|---|---|---|
| Chemical reaction | Electrons / bonding | Mg + 2HCl → MgCl₂ + H₂ |
| Nuclear reaction | Nucleus | Alpha or beta decay |
HL Only Scientists Behind Radioactivity
Discovered natural radioactivity while working with uranium salts.
Studied radioactive substances in detail and isolated new radioactive elements.
5. Electronic Structure
Electrons occupy energy levels around the nucleus. For OL and HL, students should be able to write electron configurations for the first 36 elements.
HL Only Orbitals, Sublevels and Quantum Ideas
Bohr Model: Electrons move in fixed energy levels or shells.
Wave Mechanical Model: Electrons are found in orbitals, which are regions where there is a high probability of finding an electron.
Electrons fill the lowest available energy level first.
A maximum of two electrons can occupy one orbital, with opposite spins.
Electrons occupy equal-energy orbitals singly before pairing.
It is impossible to know both the exact position and exact momentum of an electron at the same time.
5A. Higher-Level Electronic Structure Extensions
HL Only Emission and Absorption Spectra
When electrons absorb energy, they move to a higher energy level. When they fall back down, they emit light of a specific wavelength. This gives a line spectrum.
Electrons absorb certain wavelengths and jump to higher levels.
Electrons fall to lower levels and emit certain wavelengths.
HL Only Balmer Series
The Balmer series is the set of visible lines in the hydrogen emission spectrum. These lines arise when excited electrons fall to the second energy level.
HL Only First and Successive Ionisation Energies
The first ionisation energy is the energy needed to remove one mole of electrons from one mole of gaseous atoms to form one mole of gaseous 1+ ions.
Successive ionisation energies remove further electrons one at a time.
| Trend / idea | Explanation |
|---|---|
| Across a period, first ionisation energy usually increases. | Nuclear charge increases and atomic radius usually decreases. |
| Down a group, first ionisation energy usually decreases. | Outer electron is farther from nucleus and more screened. |
| Large jump in successive ionisation energies | Shows that the next electron comes from an inner shell. |
Atomic radius
Smaller radius means the nucleus attracts the outer electron more strongly.
Screening effect
Inner electrons reduce the pull felt by outer electrons.
Nuclear charge
More protons means stronger attraction for electrons.
6. Oxidation and Reduction
Oxidation and reduction can be described in terms of electron transfer.
Oxidation Is Loss; Reduction Is Gain.
Naming Transition Metal Compounds
Transition metals can have more than one possible charge, so Roman numerals are used in compound names.
| Formula | Name | Meaning |
|---|---|---|
| FeCl₂ | Iron(II) chloride | Iron has charge +2 |
| FeCl₃ | Iron(III) chloride | Iron has charge +3 |
| CuO | Copper(II) oxide | Copper has charge +2 |
HL Only Oxidation Numbers and Balancing Redox Equations
Oxidation number increases: oxidation has occurred.
Oxidation number decreases: reduction has occurred.
In redox equations, the number of electrons lost must equal the number of electrons gained.
7. Worked Examples
An atom has atomic number 17 and mass number 35.
Protons = 17
Electrons = 17 if neutral
Neutrons = 35 − 17 = 18
A radioactive sample has activity 640 counts per minute. After 3 half-lives, what is its activity?
640 → 320 → 160 → 80
Final activity = 80 counts per minute
Mg → Mg²⁺ + 2e−
Magnesium loses electrons, so magnesium is oxidised.
8. Examiner Secrets, Mistakes and Traps
9. Practical Skills
Used to identify metal ions from flame colours. For example, sodium gives a yellow flame.
A Geiger-Müller tube can detect ionising radiation and measure count rate.
Chlorine can displace bromide and iodide ions from solution because it is a stronger oxidising agent. Bromine can displace iodide ions. These colour changes help compare halogen reactivity and redox behaviour.
10. Exam Practice Questions
Q1. Explain why Mendeleev left gaps in his periodic table. [3 marks]
Q2. An isotope of potassium has mass number 39 and atomic number 19. Calculate the number of protons, neutrons and electrons in a neutral atom. [3 marks]
Q3. Compare alpha, beta and gamma radiation in terms of charge and penetrating power. [6 marks]
Q4. A radioactive sample decreases from 160 g to 20 g in 24 days. Calculate the half-life. [4 marks]
Q5. Explain oxidation and reduction using electron transfer, using magnesium reacting with copper(II) ions as an example. [5 marks]
MCQs with Explanations
1. Which particle determines the atomic number of an element?
A. Electron B. Proton C. Neutron D. Nucleus
Answer: B. Atomic number equals the number of protons. Electrons can change when ions form, but the element remains defined by proton number.
2. Which radiation has the greatest penetrating power?
A. Alpha B. Beta C. Gamma D. Neutron only
Answer: C. Gamma radiation is most penetrating and is reduced by thick lead.
3. Oxidation in electron transfer means:
A. Gain of electrons B. Loss of electrons C. Loss of neutrons D. Gain of protons
Answer: B. OIL RIG: Oxidation Is Loss; Reduction Is Gain.
11. Higher-Level Challenge
Challenge: Explain why the electronic configuration of an atom is more useful than atomic mass when predicting chemical properties.
Guidance: Chemical reactions involve outer electrons. Elements in the same group have similar outer electron arrangements, so they show similar chemical properties.
Redox Challenge: Identify oxidation and reduction in:
Zn + Cu²⁺ → Zn²⁺ + Cu
Zn loses electrons and is oxidised. Cu²⁺ gains electrons and is reduced.
12. Last-Minute Revision Sheet
- Mendeleev arranged elements mainly by atomic mass and left gaps.
- Moseley arranged elements by atomic number.
- Atomic number = protons.
- Mass number = protons + neutrons.
- Isotopes have same protons but different neutrons.
- Alpha: +2, least penetrating, most ionising.
- Beta: −1, medium penetration.
- Gamma: no charge, most penetrating, least ionising.
- Half-life means the sample or activity halves each interval.
- Electron configuration explains group properties.
- OIL RIG: Oxidation Is Loss; Reduction Is Gain.
- HLAufbau fills lowest energy first; Hund fills singly first; Pauli allows two opposite-spin electrons per orbital.
13. Self-Assessment Checklist
- I can explain how the periodic table developed.
- I can compare Mendeleev's table with the modern periodic table.
- I can identify protons, neutrons and electrons by charge, mass and location.
- I can calculate protons, neutrons and electrons from atomic and mass numbers.
- I can define isotopes.
- I can compare alpha, beta and gamma radiation.
- I can solve half-life problems.
- I can write electron configurations for the first 36 elements.
- I can explain oxidation and reduction using electron transfer.
- I can answer HL questions on orbitals, sublevels and redox.
14. Mark Scheme
Q2. Protons = 19 [1]; electrons = 19 [1]; neutrons = 39 − 19 = 20 [1].
Q3. Alpha has +2 charge and low penetration [2]; beta has −1 charge and medium penetration [2]; gamma has no charge and high penetration [2].
Q4. 160 → 80 → 40 → 20 = 3 half-lives [2]; 24 ÷ 3 = 8 days [2].
Q5. Oxidation is loss of electrons [1]; reduction is gain of electrons [1]; magnesium loses electrons to form Mg²⁺ [1]; copper(II) ions gain electrons to form copper [1]; correct example equations or explanation [1].

