IB Chemistry SL Topic 3 — Classifying the Elements Paper 1 & 2 Trends ~12 min read

Group 17 Elements and Halide Ions

The halogens run the group 1 trend backwards. These elements react by gaining an electron, so anything that pulls electrons in harder makes them more reactive — and that means the small ones at the top of the group are the dangerous ones. Displacement reactions let you see the order for yourself, in colour.

📘 What you need to know

Physical properties down the group

All four halogens you will meet are non-polar diatomic molecules, so the only forces between molecules are London (dispersion) forces. Those forces get stronger as molecules get larger, because a bigger electron cloud is easier to distort. Going down the group, molecular size and electron count both rise, so the forces strengthen and the melting and boiling points climb.

The halogens at room temperature Darker and denser as you move down the group.F₂ Cl₂ Br₂ I₂ pale yellow gas pale green gas orange-brown liquid grey-black solid most reactive brown vapour above purple vapour on warmingmelting and boiling points increase down the group More electrons per molecule means stronger London forces. The covalent bonds inside each molecule are not affected at all.
Notice that reactivity and boiling point trend in opposite directions. Boiling point is about forces between molecules; reactivity is about what happens to one atom’s electrons. Different questions, different answers.
Colours in solution matter too. Chlorine water is very pale green, bromine water is orange, and iodine solution is brown. These are the colours you use to identify what has formed in a displacement reaction.

Why reactivity decreases down the group

A halogen reacts by pulling in one extra electron. The incoming electron is attracted by the nucleus, so the question is how strong that attraction is at the point where the electron arrives — which is the outer shell.

Going down the group, the outer shell is further from the nucleus and screened by more inner shells. Fluorine’s incoming electron lands in the second shell, close and barely shielded; iodine’s lands in the fifth, far out and heavily shielded. So fluorine grabs electrons far more effectively, and reactivity falls as you go down.

Two groups, two opposite trends, one explanation. Group 1 wants to lose an electron, so a weak hold helps and reactivity rises downwards. Group 17 wants to gain one, so a weak pull hurts and reactivity falls downwards.

Displacement reactions

Put a halogen into a solution containing the ions of a less reactive halogen and it will take their electrons. That is a displacement reaction, and the colour change tells you it happened.

Which halogen displaces which A halogen only displaces one that sits below it in the group. KCl(aq) KBr(aq) KI(aq)add Cl₂ add Br₂ add I₂ turns orange turns brown turns brown The ticks form a triangle, and that triangle is the reactivity order. Iodine displaces nothing, because nothing common sits below it.
The blank diagonal is not a gap in the data — adding chlorine to chloride is adding a substance to its own ion, so nothing can happen.

Displacement is redox

Take chlorine added to potassium bromide solution. Chlorine takes electrons from the bromide ions, so bromine is released and chloride ions are left behind.

Full and ionic equations Cl2(aq) + 2KBr(aq) → 2KCl(aq) + Br2(aq)
Cl2(aq) + 2Br(aq) → 2Cl(aq) + Br2(aq)

Split it into half-equations and the electron transfer becomes obvious:

So the more reactive halogen is the better oxidising agent, and oxidising power falls down the group in step with reactivity.

Worked examples

WORKED EXAMPLE

Bromine water is added to colourless sodium iodide solution. Predict what you would see and write the ionic equation.

Step 1: check the order Bromine is above iodine in group 17, so it is more reactive and will displace it. Step 2: predict the observation Iodine is formed, and iodine in solution is brown. Step 3: write the ionic equation Br₂(aq) + 2I⁻(aq) → 2Br⁻(aq) + I₂(aq) The orange solution turns dark brown as iodine is displaced sodium ions appear on both sides, so they are left out of the ionic equation
WORKED EXAMPLE

Identify what is oxidised and what is reduced in the reaction Cl2 + 2I → 2Cl + I2, and name the oxidising agent.

Step 1: track the chlorine Cl goes from 0 in Cl2 to −1 in Cl, so it gains electrons. reduction Step 2: track the iodine I goes from −1 in I to 0 in I2, so it loses electrons. oxidation Step 3: name the agents The species that causes oxidation is the one being reduced. Chlorine is reduced and is the oxidising agent; iodide is oxidised and is the reducing agent the agent labels always feel backwards at first — the oxidising agent is the one that gets reduced
WORKED EXAMPLE

Which pair would react most vigorously: caesium with iodine, or caesium with fluorine? Explain.

Step 1: what each element wants Caesium must lose an electron; the halogen must gain one. Step 2: apply both trends Group 1 reactivity increases down, so caesium is already the best choice available. Group 17 reactivity decreases down, so fluorine beats iodine. Step 3: combine Easiest electron to give, strongest pull to take it. Caesium with fluorine — lowest ionisation energy meets the most electronegative element the two trends run in opposite directions, so the most violent pair is bottom-left with top-right

💡 Exam tip

⚠ Common mix-up

Up next: Metallic and Non-Metallic Oxides — we cross a whole period instead of walking down a group, and watch the oxides change from strongly alkaline to strongly acidic as the bonding changes underneath.

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