IB Chemistry SLTopic 3 — Classifying the ElementsPaper 1 & 2Trends~13 min read
Trends Across the Periodic Table
Five trends, one explanation. Atomic radius, ionic radius, ionisation energy, electron affinity and electronegativity all come from the same tug of war between the nucleus pulling electrons in and distance plus shielding letting them escape. Learn the tug of war once and you can reason your way to all five.
📚 What you need to know
Three factors decide everything: nuclear charge, shielding by inner electrons, and distance from the nucleus.
Across a period: more protons, same shielding → stronger pull → smaller atoms, higher ionisation energy, higher electronegativity.
Down a group: an extra shell each time → more distance and more shielding → bigger atoms, lower ionisation energy, lower electronegativity.
Cations are smaller than their parent atoms; anions are larger.
Ionisation energy is the energy to remove one mole of electrons from one mole of gaseous atoms.
Electronegativity is the pull an atom exerts on a shared pair in a covalent bond. Fluorine is the highest.
The tug of war
Everything on this page reduces to a competition between two things.
Pulling in: the positive nucleus. More protons means a stronger pull on the outer electrons.
Pushing out: distance and shielding. Inner-shell electrons repel the outer ones and partly screen them from the nucleus, so the outer electrons feel less of the pull than the proton count suggests.
Now watch what happens in each direction. Across a period you add protons but you keep adding electrons to the same shell, so shielding barely changes. The nucleus wins. Down a group you add protons too, but you also add a whole new shell, so distance and shielding jump. Shielding wins.
If an “explain” question is worth 3 marks, it usually wants all three factors: what happens to nuclear charge, what happens to shielding, and what happens to distance. Give one and you’ll get one mark.
Atomic radius
The atomic radius is the distance from the nucleus to the outermost electron shell. Atoms have no hard edge, so in practice it is measured as half the distance between the centres of two touching atoms.
Across a period the nuclear charge wins and atoms shrink. Down a group the extra shell wins and atoms grow.
Across a period it decreases. Protons are added, electrons go into the same shell, shielding stays roughly constant, so the growing nuclear charge drags the outer shell in tighter.
Down a group it increases. Each element has one more occupied shell, so the outer electrons are further out and better shielded. Nuclear charge rises too, but distance and shielding outweigh it.
There is also a big jump between the noble gas at the end of one period and the alkali metal at the start of the next — that is a brand-new shell beginning.
Ionic radius
Making an ion changes the size, sometimes dramatically.
Ion type
Size vs the atom
Why
Cation (e.g. Na+)
Smaller
Electrons are lost, often losing a whole outer shell; the remaining electrons feel less repulsion and more pull each
Anion (e.g. Cl–)
Larger
Electrons are added with no extra protons, so electron–electron repulsion spreads the cloud out
A neat consequence: in an isoelectronic series (ions with the same number of electrons, such as N3–, O2–, F–, Na+, Mg2+), the one with the most protons is the smallest, because the same electron cloud is being pulled by a bigger charge.
Ionisation energy
The first ionisation energy is the energy needed to remove one mole of electrons from one mole of gaseous atoms, forming one mole of gaseous 1+ ions. It is always endothermic — you are pulling a negative electron away from a positive nucleus.
First ionisation energy
Mg(g) → Mg+(g) + e– ΔH = +738 kJ mol–1
Those (g) state symbols are not decoration — the definition specifies gaseous atoms, and examiners look for them.
Every peak is a full outer shell and every trough is a fresh one starting. The shape of this graph is the periodic table in one line.
The graph shows the pattern beautifully. Values climb across each period as the nuclear charge grows, spike at the noble gases where the outer shell is full and tightly held, then crash at the next alkali metal, where a single electron sits alone in a brand-new, well-shielded shell.
Across a period: ionisation energy increases — the electron is held more tightly, so more energy is needed.
Down a group: ionisation energy decreases — the outer electron is further out and better shielded, so it is easier to pull off.
Electron affinity
Electron affinity is the energy change when one mole of gaseous atoms each gains an electron, forming 1– ions. For most non-metals it is exothermic (negative), because the incoming electron is attracted to the nucleus.
First electron affinity
Cl(g) + e– → Cl–(g) ΔH = –349 kJ mol–1
Across a period it becomes more negative: smaller atoms with a bigger nuclear charge hold the extra electron more strongly. Down a group it becomes less negative: the incoming electron ends up further out and more shielded.
A few elements buck the trend and have positive (endothermic) first electron affinities — Group 2 and Group 15 in particular — because the incoming electron has to squeeze into an already stable full or half-filled sub-shell.
Watch the sign. “More negative” and “larger” mean opposite things here. A more negative electron affinity means a stronger attraction for the electron.
Electronegativity
Electronegativity is the ability of an atom to attract a shared pair of electrons in a covalent bond. It is not measured in energy units — it is a relative scale, with fluorine the highest at 4.0.
Across a period it increases: more protons, same shielding, smaller atom, so the bonding pair is pulled harder.
Down a group it decreases: the bonding pair sits further from the nucleus behind more shielding.
So the most electronegative elements sit in the top right (ignoring the noble gases) and the least electronegative in the bottom left. This is the trend you use later to decide whether a bond is ionic, polar covalent or non-polar.
Data booklet: electronegativity values are in Section 9. Use them rather than guessing.
All five together
Property
Across a period →
Down a group ↓
Deciding factor
Atomic radius
Decreases
Increases
Nuclear charge vs extra shells
Ionisation energy
Increases
Decreases
How tightly the outer electron is held
Electron affinity
More negative
Less negative
How strongly an incoming electron is attracted
Electronegativity
Increases
Decreases
Pull on a shared pair
Metallic character
Decreases
Increases
How easily electrons are lost
WORKED EXAMPLE
Place these atoms in order of increasing atomic radius: S, Mg, Ca, Cl.
Sort by period firstMg, S and Cl are all Period 3. Ca is Period 4, so it has an extra shell and is the biggest.Within Period 3, radius decreases left to rightMg (Group 2) > S (Group 16) > Cl (Group 17)Cl < S < Mg < Ca
WORKED EXAMPLE
Explain why the first ionisation energy of potassium is lower than that of sodium.
Both are Group 1, so both lose one outer s electronK has an extra occupied shellIts outer electron is further from the nucleus, and there is more shielding from the extra inner shell.Nuclear charge is higher in K, but distance and shielding outweigh itweaker attraction → less energy needed → lower IE
WORKED EXAMPLE
Which is smaller, K+ or Cl–? Both have 18 electrons.
Isoelectronic — same electrons, different protonsK⁺ has 19 protons; Cl⁻ has 17More protons pulling the same 18 electronsK⁺ is smallerIn any isoelectronic series, the most protons means the smallest ion.
💡 Exam tip
Structure every explanation the same way: nuclear charge → shielding → distance → therefore attraction → therefore the property.
Use the word shielding explicitly. “It’s further away” alone rarely gets the mark.
Include state symbols and ΔH signs in ionisation energy and electron affinity equations.
Compare like with like: same group means the shell count is the variable, same period means the proton count is.
⚠️ Common mix-up
Shielding does not increase across a period. No new shell is added, so it stays roughly constant.
Electronegativity is not electron affinity. One is a relative pull inside a bond; the other is a measured energy change for a gaseous atom.
Ionisation energy is always positive (endothermic). Only electron affinity is usually negative.
Don’t say “more electrons, so bigger”. Adding electrons across a period makes atoms smaller, because protons are added too.
Anions are bigger, cations are smaller — not the other way round.
Up next: Group 1 Metals Reacting with Water — the first place these trends show up as something you can actually watch happen.
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