Study Guide

Atoms and subatomic particles

IB Chemistry HLΒ· Topic 1.1: Introduction to the particulate nature of matterΒ· 15 min read

1. Properties of Subatomic Particlesβ˜…β˜†β˜†β˜†β˜†β± 5 min

πŸ“˜ Definition

Atom

The smallest unit of an element that retains all the chemical properties of that element. Atoms consist of a dense, positively charged nucleus surrounded by a cloud of negatively charged electrons.

Particle

Relative Mass

Relative Charge

Location

Proton

1

+1

Nucleus

Neutron

1

0

Nucleus

Electron

1/1836

-1

Electron cloud outside nucleus

πŸ“ Worked Example

Compare the relative mass and charge of a proton and an electron.

  1. 1

    Recall the relative properties of each particle from the table:

  2. 2
    Proton: mass=1,charge=+1\text{Proton: mass} = 1, \text{charge} = +1
  3. 3

    Recall the properties of an electron:

  4. 4
    Electron: mass=11836β‰ˆ0,charge=βˆ’1\text{Electron: mass} = \frac{1}{1836} \approx 0, \text{charge} = -1
  5. 5

    Conclusion: A proton has ~1836 times the mass of an electron, and equal magnitude opposite charge.

2. Nuclide Notation and Particle Countingβ˜…β˜…β˜†β˜†β˜†β± 6 min

πŸ“˜ Definition

Nuclide Notation

ZAX_Z^A X

Standard notation for a specific atomic species, where = atomic number (number of protons), = mass number (total protons + neutrons), and = the element's chemical symbol.

For neutral atoms, the number of protons equals the number of electrons, so net charge is zero. For charged ions, the number of electrons differs from the proton number: positive cations lose electrons, negative anions gain electrons. The number of protons and neutrons is never affected by ion formation.

πŸ“ Worked Example

Find the number of protons, neutrons and electrons in the ion.

  1. 1

    Extract values from the notation: (proton number), (mass number), charge = -1

  2. 2

    Number of protons = = 17 (proton number never changes for an element)

  3. 3

    Calculate number of neutrons as :

  4. 4
    n=35βˆ’17=18n = 35 - 17 = 18
  5. 5

    For a -1 charge, add 1 electron to the proton number: electrons = 17 + 1 = 18

  6. 6

    Final result: 17 protons, 18 neutrons, 18 electrons

βœ“ Quick check

Test your understanding:

  1. How many electrons are in ?

    • 10

    • 12

    • 14

    • 24

    Reveal answer
    10 β€”

    Correct: protons, +2 charge means 12 - 2 = 10 electrons. Charge only changes electron count.

3. Isotopes and Their Propertiesβ˜…β˜…β˜†β˜†β˜†β± 4 min

πŸ“˜ Definition

Isotopes

Atoms of the same element that share the same atomic number (number of protons) but have different mass numbers (different number of neutrons).

Isotopes of the same element have identical chemical properties because chemical reactivity depends on electron number, which is the same for all isotopes. They differ in physical properties like mass, density, boiling point and melting point, due to their different mass. Some isotopes are radioactive (radioisotopes) and have uses in medicine, archaeology and industry.

πŸ“ Worked Example

Compare the subatomic composition and properties of carbon-12 and carbon-14, two common isotopes of carbon.

  1. 1

    Carbon always has an atomic number , so both isotopes have 6 protons.

  2. 2

    Calculate neutron count for each: carbon-12 (A=12) has 12 - 6 = 6 neutrons; carbon-14 (A=14) has 14 - 6 = 8 neutrons.

  3. 3

    Both are neutral, so both have 6 electrons.

  4. 4

    Properties comparison: chemical properties are identical. Physical properties differ: carbon-14 is heavier and radioactive, while carbon-12 is stable.

4. Common Pitfalls

Wrong move:

Using atomic number Z as the electron count for all species, regardless of charge.

Why:

Only neutral atoms have equal numbers of protons and electrons. Ions gain or lose electrons, changing the electron count.

Correct move:

For +n cations: electrons = Z - n. For -n anions: electrons = Z + n. Proton count always equals Z.

Wrong move:

Calculating neutron count as Z - A instead of A - Z.

Why:

Mass number A is the sum of protons and neutrons, so it is always larger than atomic number Z. This mistake gives a negative neutron count.

Correct move:

Neutron number = mass number (A) minus atomic number (Z): .

Wrong move:

Claiming isotopes of the same element have different chemical properties.

Why:

Chemical reactivity is controlled by electron arrangement, which is identical for isotopes of the same element.

Correct move:

Isotopes have identical chemical properties, and only differ in physical properties like mass and density.

Wrong move:

Using the average relative atomic mass from the periodic table as the mass number A for a specific nuclide.

Why:

Relative atomic mass is a weighted average of all isotopes of an element, often not a whole number. Mass number is a count of nucleons for a single nuclide, always a whole number.

Correct move:

Only use the mass number given for the specific nuclide in the question, not the average from the periodic table.

5. Quick Reference Cheatsheet

Quantity

Calculation

Rule for Ions

Proton number

Equal to Z (atomic number)

Unchanged by charge

Neutron number

A - Z

Unchanged by charge

Electrons (neutral atom)

Equal to Z

N/A

Electrons (+n cation)

Z - n

Subtract charge value

Electrons (-n anion)

Z + n

Add charge magnitude

6. Frequently Asked

Do isotopes have the same chemical properties?

Yes. Chemical reactivity is controlled by electron number, which is identical for isotopes of the same element. Only physical properties like mass and density differ.

How do I calculate the number of neutrons?

Neutron number = mass number () minus atomic number (): . Charge does not affect neutron count.

When this came up on past exams

AI-estimated based on syllabus patterns β€” cross-check with official past papers for accuracy. Use only as revision-focus signals.

  • 2025 Β· Paper 1

    Count particles in a chloride ion

  • 2024 Β· Paper 2

    Compare properties of carbon isotopes

Going deeper

What's Next

This sub-topic forms the foundation of all atomic structure and chemical bonding concepts in IB Chemistry HL. You will build on this core understanding to explore the historical development of atomic models, followed by learning how mass spectrometry separates isotopes and allows calculation of average relative atomic mass. Mastery of subatomic particle counting and nuclide notation is critical for all subsequent IB Chemistry topics, including stoichiometry, chemical bonding, and nuclear chemistry, and this foundational content is regularly tested in both Paper 1 and Paper 2 exams.