AQA Chemistry (8462) 4.2.1.1 · Classify

Chemical bonds

Name two elements. Can you say how they will bond, and what the substance will do, before you ever see it?

Start here

Same chlorine. Two partners. Two different worlds.

Sodium is a soft metal that fizzes on water. Chlorine is a poisonous green gas. Together they make table salt: a white crystal that stays solid until 801 °C. Swap sodium for hydrogen and chlorine makes hydrogen chloride, which stays a gas until it is cooled below −85 °C.

Commit first

What decides whether chlorine ends up in a high-melting crystal or in a gas?

Atoms bond because a full outer shell is more stable, and there are only three ways to get one. Most metal atoms have one, two or three outer electrons and give them away. Most non-metal atoms have four to seven and take more in, or share.

Metal with non-metal: electrons are transferred, the atoms become oppositely charged ions, and the ions attract. That is ionic bonding. Two non-metals: neither gives way, so they share pairs of electrons. That is covalent bonding. Metal atoms on their own release their outer electrons into a sea that belongs to the whole lump. That is metallic bonding. So the first question is always the same: metal or non-metal?

The bond decider

Pick two elements. Call the bond. Watch it form.

0 pairs called

Tap an element, then its partner. Tap the same element twice for the element on its own.

Part of the periodic table, by group. Most transition metals and Group 3 are left out.

No pair yet

The bond decides what the substance does. Ionic compounds and metals are giant structures, held by strong attraction all the way through, so most melt only when very hot. Covalent substances split two ways. Most are small molecules that melt and boil at low temperatures; a few, like diamond and sand, are giant networks that melt only when very hot. To carry a current you need charged particles that can move: a metal's electron sea always can, but ions only can once the solid melts or dissolves.

Think again

“Ice melts at 0 °C and salt at 801 °C, so the covalent bonds in water must be weak.”

Spot the flaw

Explain

What is wrong with that reasoning?

Sort it

Ionic, covalent or metallic?

Eight substances. Decide from the elements in each, not from what you remember about it.

Tap a card, then tap the box it belongs in. Tap a placed card to take it back.

Command words in this lesson

Identify
Name it. One word or a short phrase is enough.
Predict
Give a likely outcome. Here, say which elements are metals.
Deduce
Reach a conclusion from the data you are given.
Justify
Back your answer with evidence from the question.

Key fact

Metal with non-metal: ionic, electrons transferred. Non-metal with non-metal: covalent, electrons shared. Metal on its own or with other metals: metallic, electrons delocalised.

Examiner tip

Key note · AQA 4.2.1.1 (8462)

Chemical bonds

  1. Atoms bond to reach a full outer shell, like a noble gas.
  2. Metal + non-metal: ionic. The metal transfers electrons; the ions attract.
  3. Non-metal + non-metal: covalent. The atoms share pairs of electrons.
  4. Metal alone or in an alloy: metallic. Positive ions in a sea of delocalised electrons.
  5. Hydrogen is a non-metal, even though it has one outer electron like Group 1.
  6. Justify every prediction from the elements: say which ones are metals.

Photograph this card. Tomorrow, cover it and say each line first.

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