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  4. Getting metals out of rocks

Metals and materials · Process

Getting metals out of rocks

Half of a lump of malachite is copper, by mass, and no amount of melting will pour any of it out. So how do you get a metal out of a rock that is not letting go?

Start here

A lump of green-blue stone from a Cornish mine, and a length of copper pipe.

The stone is malachite. Roughly half of it, by mass, is copper. None of that copper looks like copper, behaves like copper, or conducts like copper — and no amount of melting the stone will pour any out.

The copper is in there. Why can it not simply be melted out?

A rock with enough of a metal compound in it to be worth digging up is an ore. Most ores are, or can be roasted into, the metal's oxide.

So extraction is nearly always the same job: take the oxygen away. Removing oxygen from a compound is called reduction, and there are only a few ways to do it. Which one works is decided by the reactivity series.

Reference · keep this one open

The carbon line

  • Above carbon

    Potassium, sodium, calcium, magnesium, aluminium. These hold oxygen more tightly than carbon does, so carbon cannot take it. They need electricity.

  • Carbon

    The line itself. Not a metal, and its place in the series is what decides every row above and below.

  • Below carbon

    Zinc, iron, lead, copper. Carbon takes the oxygen and the metal is left. This is a furnace, and it is cheap.

  • Far below carbon

    Silver and gold. Their oxides fall apart on heating alone, and gold is mostly found as the metal in the first place.

Carbon is a non-metal with a place in the series, and this is what the place is for. It can pull oxygen away from the oxide of anything below it, and from nothing above it.

Your turn · six deliveries

Six things arrive at the works. Find the method that frees the metal.

0 of 6 found

Pick a delivery, then pick a method.

Key fact

Heating a metal oxide with carbon takes the oxygen away and leaves the metal — but only for metals below carbon in the reactivity series. Metals above carbon have to be split out with electricity.

Five words

Say your answer out loud before you turn each card over. If you cannot say it, you do not know it yet.

Think again

“Any oxide gives up its oxygen to carbon if the furnace is hot enough.”

Hotter fixes a great many things in chemistry. Commit before you read on.

Mastery ladder

Not started yet.

Rungs 3 and 4 you mark yourself.

Rung 1 · Recall

Which of these metals can be obtained from its oxide by heating with carbon?

Rung 2 · The one that catches people

Aluminium is one of the commonest metals in the Earth's crust, and in the 1850s it cost more than gold. Which statement explains why?

Rung 3 · Explain

Explain why iron can be obtained from its oxide in a furnace with carbon, but aluminium cannot, using the reactivity series in your answer.

Rung 4 · Take it somewhere new

A new metal M is discovered. Its oxide is unchanged when heated alone and unchanged when heated with carbon. Describe where M sits in the reactivity series and how it would have to be extracted.

Key note

An ore is a rock containing enough of a metal compound to be worth extracting, and most ores are metal oxides. Removing the oxygen is reduction. A metal below carbon in the reactivity series can be reduced by heating its oxide with carbon, which takes the oxygen and leaves the metal — this is how iron, zinc, copper and lead are obtained. A metal above carbon holds oxygen too tightly for carbon to remove, and is obtained by passing electricity through its molten compound. The few metals below carbon that are least reactive of all, such as gold, are found in the ground as the metal itself.

Going further

A blast furnace does not mostly work the way the bench above suggests. Coke burns to carbon dioxide, the carbon dioxide meets more hot coke and becomes carbon monoxide, and it is the carbon monoxide that does most of the work of taking oxygen off the iron oxide as it falls through. Solid carbon touching solid ore is a small part of it. The rule you have learned is right about WHICH metals and slightly simple about HOW.

Aluminium is expensive to win from its ore and cheap to use again. Melting down cans and remaking them takes roughly a twentieth of the electricity that extracting the same aluminium from bauxite would need, because the hard part — prising the oxygen off — has already been paid for once. It is the clearest case in chemistry of recycling being an energy decision rather than a tidiness one.

Before this lesson

Next in this unit

At GCSE this becomes

  • Reduction and oxidation defined by electron transfer, the blast furnace equations, and electrolysis of aluminium oxide dissolved in molten cryolite.

Where to next

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