The aluminium foil in your kitchen, the copper wire in your fan, the iron gate outside and the zinc coating on a bucket all began as lumps of rock. Turning that rock into a usable metal is called metallurgy, and the method depends on one thing: how reactive the metal is.
This guide follows six everyday metals from ore to product, explains why each one needs a different method, and then covers the terms and the reactions that appear in the Class 10 chapter.
From Rock to Metal: The Three Steps
A few terms come first.
| Term | Meaning |
| Mineral | A naturally occurring substance that contains a metal or its compound |
| Ore | A mineral from which the metal can be extracted profitably |
| Gangue | The earthy impurities, such as sand and rock, mixed with the ore |
| Metallurgy | The whole process of extracting a metal from its ore and purifying it |
Almost every extraction follows the same three steps.
- Enrichment: remove the gangue so that the ore is richer in the metal compound.
- Extraction: convert the ore into the metal, usually by getting rid of oxygen or other non-metals.
- Refining: purify the metal that comes out.
Reactivity Decides the Method
The more reactive a metal is, the more strongly it holds on to oxygen and other non-metals, and the more energy it takes to separate them. That is why the reactivity series also acts as a guide to extraction.
| Reactivity | Metals | Method | Why |
| High | Sodium, magnesium, calcium, aluminium | Electrolytic reduction of the molten compound | Carbon cannot pull them away from oxygen, so electricity is used |
| Medium | Zinc, iron, lead | Roast or calcine the ore to an oxide, then reduce with carbon | Carbon can remove oxygen from these oxides |
| Low | Mercury, copper | Heat the sulphide ore in air, with little or no carbon needed | Their oxides decompose easily on heating |
| Very low | Silver, gold, platinum | Found free in nature, or recovered with simple methods | They hardly react with oxygen at all |
A Tour of Six Everyday Metals
Zinc: the bucket and the dry cell
Zinc is found as zinc sulphide or zinc carbonate. A sulphide ore is first heated strongly in air, a process called roasting: 2ZnS + 3O₂ → 2ZnO + 2SO₂. A carbonate ore is heated in limited air, called calcination: ZnCO₃ → ZnO + CO₂. The zinc oxide is then reduced by carbon: ZnO + C → Zn + CO.
Iron: the gate and the tawa
Iron is obtained by reducing its oxide with carbon in a blast furnace. A neat classroom version is the thermite reaction, in which aluminium reduces iron(III) oxide: Fe₂O₃ + 2Al → Al₂O₃ + 2Fe. The heat released melts the iron, which is why the reaction is used to join railway tracks.
Aluminium: foil and vessels
Aluminium is too reactive to be reduced by carbon. It is obtained by passing electricity through molten aluminium oxide, where aluminium collects at the cathode. In industry the oxide is dissolved in molten cryolite to lower the working temperature. This is the high-reactivity method.
Copper: wires and vessels
Copper is found as copper sulphide (copper glance). It is heated in air to give copper oxide, and then the oxide and the remaining sulphide react to give the metal: 2Cu₂S + 3O₂ → 2Cu₂O + 2SO₂, then 2Cu₂O + Cu₂S → 6Cu + SO₂. The copper obtained is not pure and is refined by electrolysis.
Mercury: the old thermometer
Mercury comes from cinnabar, mercury sulphide. Roasting gives the oxide, and heating the oxide gives the metal: 2HgS + 3O₂ → 2HgO + 2SO₂, then 2HgO → 2Hg + O₂.
Gold and silver: found as they are
These sit at the bottom of the series and are often found in the free state, which is why they have been used for ornaments since ancient times. See why gold does not rust but iron does.
Calcination and Roasting Compared
| Calcination | Roasting | |
| Used for | Carbonate ores | Sulphide ores |
| Condition | Heated strongly in limited air | Heated strongly in excess air |
| Gas given off | Carbon dioxide | Sulphur dioxide |
| Product | Metal oxide | Metal oxide |
| Example | ZnCO₃ → ZnO + CO₂ | 2ZnS + 3O₂ → 2ZnO + 2SO₂ |
Refining: Making Impure Copper Pure
Electrolytic refining is the standard way of purifying many metals, and copper is the textbook example. A thick block of impure copper is the anode, a thin strip of pure copper is the cathode, and the electrolyte is acidified copper sulphate solution. When current passes, copper from the anode dissolves into the solution, and an equal amount of pure copper deposits on the cathode. The impurities settle at the bottom as anode mud, which often contains silver and gold. For a clear comparison with the extraction step, see the difference between electrolytic reduction and refining.
Why Extraction Matters Beyond the Exam
Extracting metals takes a great deal of energy and leaves behind waste rock and gases such as sulphur dioxide. That is one reason recycling metals is worth the effort, and it connects this chapter to the 3R idea in management of natural resources: reduce what you use, reuse what you can, and recycle what remains.
Ores You Can Name
Every metal has a favourite ore, and knowing the pairing makes the chapter much easier to recall.
| Metal | Main ore | What the ore is | Method in short |
| Sodium | Rock salt | Sodium chloride | Electrolysis of the molten compound |
| Aluminium | Bauxite | Aluminium oxide with water | Electrolysis of molten aluminium oxide |
| Zinc | Zinc blende, calamine | Zinc sulphide, zinc carbonate | Roast or calcine, then reduce with carbon |
| Iron | Haematite | Iron(III) oxide | Reduce with carbon in a blast furnace |
| Copper | Copper glance, copper pyrites | Copper sulphide, and a copper-iron sulphide | Heat in air, then refine by electrolysis |
| Mercury | Cinnabar | Mercury sulphide | Roast in air, which gives mercury directly |
Three Questions That Test Understanding
Examiners like to ask why, and the answer is always reactivity. Here are three typical questions and how to reason through them.
Why is sodium not extracted with carbon? Sodium is very high in the reactivity series, so it holds on to chlorine very strongly. Carbon is less reactive than sodium and cannot take chlorine away. The only way to pull the sodium free is to supply electrical energy.
Why can zinc be extracted with carbon but aluminium cannot? Zinc oxide gives up its oxygen to carbon at the temperatures used in the furnace. Aluminium oxide holds its oxygen much more tightly, because aluminium is more reactive than zinc, and carbon cannot compete.
Why do we convert a sulphide or carbonate ore to an oxide first? Obtaining a metal from its oxide is easier than from its sulphide or carbonate. Roasting or calcining converts the ore into the oxide, and then the oxide is reduced.
Why Reduction Is Used
The word reduction describes what is happening to the metal compound: it loses oxygen, or the metal ion gains electrons, and the metal is obtained. In the reaction ZnO + C → Zn + CO, zinc oxide is reduced and carbon is oxidised. A reaction in which one substance is reduced while another is oxidised is a redox reaction, and extraction is one of the most important uses of redox in industry.
Alloys: The Next Step After Extraction
Pure metals are often too soft or too reactive for everyday use, so they are mixed to make alloys. An alloy is a homogeneous mixture of a metal with other metals or non-metals.
| Alloy | Made from | Why it is useful |
| Steel | Iron with a little carbon | Harder and stronger than pure iron |
| Stainless steel | Iron with nickel and chromium | Does not rust |
| Brass | Copper and zinc | Strong, and easy to shape |
| Bronze | Copper and tin | Hard, used for bells and statues |
| Solder | Lead and tin | Low melting point, used to join wires |
Alloying is the reason that most of the metal objects in a home are not pure metals at all.
Extraction in Your Textbooks
Metal extraction is part of Metals and Non-metals, which is Chapter 3 in both the CBSE and the Karnataka SSLC Class 10 Science textbooks. These chapter notes and the occurrence of metals page cover the full chapter. In Class 12, the chapter on the isolation of elements has been removed from the CBSE textbook according to published deleted-syllabus lists, so check the latest NTA and NMC entrance-exam syllabi to see what they expect, and confirm Class 10 portions with your own board.
Frequently Asked Questions
Q1. How are metals extracted according to their reactivity?
Highly reactive metals such as sodium and aluminium are extracted by electrolysis of their molten compounds. Metals of medium reactivity such as zinc and iron are reduced from their oxides with carbon. Metals of low reactivity such as mercury and copper are obtained by heating their sulphide ores, and gold and silver are often found free.
Q2. What is the difference between calcination and roasting?
Calcination is heating a carbonate ore strongly in limited air to give the oxide and carbon dioxide. Roasting is heating a sulphide ore strongly in excess air to give the oxide and sulphur dioxide.
Q3. Why can’t aluminium be extracted with carbon?
Aluminium is too reactive. It holds on to oxygen more strongly than carbon does, so carbon cannot reduce aluminium oxide, and electrolysis is used instead.
Q4. How is impure copper refined?
By electrolysis. Impure copper is the anode, pure copper is the cathode, and acidified copper sulphate is the electrolyte. Copper moves from the anode to the cathode, and impurities collect as anode mud.
Q5. What is gangue?
Gangue is the unwanted earthy material, such as sand and rock, that is mixed with an ore and removed during enrichment.
Every Metal Has a Route
Once you see that reactivity sets the route, extraction stops being a list of reactions to memorise. A metal that clings to oxygen needs electricity, a metal of middling grip yields to carbon, and a metal that barely reacts at all can often simply be picked up.














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