IB Chemistry HL Topic 6 — Electron Sharing Paper 1 & 2 Core idea ~9 min read

Free Radicals

Up to now electrons have moved around in pairs. A radical breaks that habit: it has one electron sitting on its own, with no partner. That single lonely electron is why radicals are so desperate to react, and why the chemistry on the next two pages looks nothing like anything you have met so far.

📚 What you need to know

Paired, or not paired

Every stable molecule you have drawn so far has its electrons in pairs: bonding pairs holding atoms together and lone pairs sitting on atoms. A radical has one electron left over with nowhere to go.

What makes something a radical Count the electrons: one left over means a radical Cl Cl⁻Cl• RADICAL 7 electrons: 3 pairs and 1 left overCl⁻ NOT a radical 8 electrons: 4 complete pairsIt is the leftover electron that matters, not the charge A radical can be neutral, positive or negative. Only the odd electron counts.
The red electron is the whole story. Give the chlorine atom one more electron and it becomes a stable chloride ion — which is exactly why chlorine radicals grab electrons so eagerly.
A shortcut worth knowing: add up the outer-shell electrons of the whole species, adjusting for charge. If the total is odd, one electron cannot possibly be paired, so it must be a radical. NO has 5 + 6 = 11 electrons, so it is a radical without you having to draw anything.

The four types

Four kinds of radical All four have one thing in common ATOMIC one single atom with an unpaired electron Br• H•MOLECULAR several atoms, no overall charge •CH₃ OH•ANIONIC gained an electron, still has an odd one O₂⁻•CATIONIC lost an electron, still has an odd one C₃H₈⁺•Charge is optional. The unpaired electron is not. One test only: does the species have an electron sitting on its own?
Notice the superoxide ion O2• is both an anion and a radical at the same time. The two labels are describing completely different things.

Where to put the dot

In a species made of several atoms, the dot belongs on the atom that actually holds the unpaired electron — not floating somewhere near the formula.

Do not confuse the radical dot with a lone pair or with the dots in a Lewis diagram. The radical dot is a single electron. If you can see two dots together, that is a pair, and pairs do not make radicals.

Why radicals are so reactive

An unpaired electron is an unstable arrangement. The species is high in energy, and it can lower that energy by getting the electron paired up somehow. There are only two ways to do that:

🧩 The two things a radical can do

  1. Steal from something else. It takes an atom or electron from a neighbouring molecule. That molecule is now short of an electron, so it becomes a radical too — the problem has been passed on, not solved.
  2. Pair up with another radical. Two unpaired electrons join to form a covalent bond, and both radicals disappear at once. This is the only way the chain actually stops.
  3. Either way it happens fast. Radicals typically survive for a tiny fraction of a second before reacting.
Why this matters beyond the exam: radicals in the upper atmosphere are what destroy ozone, and radicals in your body are what antioxidants are sold to mop up. Step 1 above — passing the problem on — is exactly why one chlorine radical can wreck thousands of ozone molecules.

Worked examples

WORKED EXAMPLE

Which of these are radicals? H, HCl, NO, Br, •CH2CH3, CO2

Step 1: Count outer electrons, adjusting for charge H = 1   HCl = 1 + 7 = 8   NO = 5 + 6 = 11 Br = 7 + 1 = 8   C2H5 = 8 + 5 = 13   CO2 = 4 + 12 = 16 Step 2: Odd totals cannot pair up 1, 11 and 13 are odd, so those three must have an unpaired electron. H, NO and •CH2CH3 are radicals Br is charged but not a radical — charge and radical are separate ideas
WORKED EXAMPLE

Classify each of these radicals as atomic, molecular, anionic or cationic: Br•, •CH3, O2

Step 1: Ask how many atoms, then ask about charge One atom means atomic. Several atoms with no charge means molecular. Step 2: Work through them Br• — one atom, no charge → atomic •CH3 — four atoms, no charge → molecular O2• — two atoms, one negative charge → anionic Atomic, molecular and anionic all three are still radicals — the type is just extra description
WORKED EXAMPLE

Explain why radicals are described as short-lived, and why one radical often leads to many reactions.

Step 1: Start from the unpaired electron It makes the species high in energy and therefore unstable. Step 2: Say what it does about that It reacts almost immediately with the first thing it meets, so it does not exist for long. Step 3: Follow what happens next Taking an atom from another molecule turns that molecule into a radical. Short-lived because they react on contact; the problem is passed along, creating a chain “it makes a new radical” is the phrase that earns the second mark

💡 Exam tip

⚠ Common mix-up

Up next: Homolytic Fission — radicals have to come from somewhere. They are made by splitting a covalent bond straight down the middle, giving one electron to each atom.

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