In this article, we will explain the chemistry of aluminium and its main compounds in simple terms. We will cover what they react with, what they ignore, and why this matters in real life.


The Secret Shield: The Oxide Film

Before looking at reactions, you must know about aluminium’s hidden armor.

When pure aluminium touches oxygen in the air, it quickly forms a very thin, invisible layer of aluminium oxide (Al2O3). This layer acts like a shield. It stops water and air from reaching the metal underneath, which is why your aluminium window frames do not rust away in the rain.

Key Fact: Because of this oxide layer, pure aluminium often seems less reactive than it actually is

1. What Pure Aluminium (Al) Reacts With

If you bypass or break the oxide film, aluminium is actually a very reactive metal.

Simple Acids

Aluminium reacts readily with common acids like hydrochloric acid (HCl) to form aluminium salts and release hydrogen gas:

2Al + 6HCl → 2AlCl3 + 3H2

Strong Bases (Alkalis)

Unlike metals such as iron or copper, aluminium dissolves in strong bases like sodium hydroxide (NaOH). This is its amphoteric nature in action:

2Al + 2NaOH + 6H2O → 2Na[Al(OH)4] + 3H2

Non-Metals at High Temperatures

When heated, aluminium burns brightly with oxygen (O2), sulfur (S), chlorine (Cl2), or nitrogen (N2):

  • Oxygen: 4Al + 3O2 → 2Al2O3
  • Chlorine: 2Al + 3Cl2 → 2AlCl3

Metal Oxides (The Thermite Reaction)

Aluminium has a high affinity for oxygen. If you mix aluminium powder with iron oxide and light it, aluminium steals the oxygen to create liquid iron and huge amounts of heat. This process is used to weld railway tracks together.


2. What Pure Aluminium Does NOT React With

Understanding what aluminium avoids is just as important as knowing what it reacts with.

  • Cold Concentrated Nitric Acid (HNO3): Highly concentrated nitric acid or sulfuric acid creates a thick, tough oxide layer on the metal. This phenomenon is called passivation. The reaction stops instantly, which allows industry to safely store cold concentrated nitric acid in aluminium containers.
  • Water under normal conditions: The oxide film keeps water out. However, if you remove the film using mercury (amalgamation), aluminium reacts vigorously with water to create hydrogen gas.
  • Hydrogen gas (H2): Aluminium does not react directly with hydrogen gas to form hydrides.
  • Salts of more reactive metals: Aluminium will not react with or displace metals higher than itself in the reactivity series, such as potassium or sodium salts (e.g., NaCl).

3. Aluminium Compounds and Their Reactions

Aluminium forms several key compounds that behave differently in chemical reactions.

Aluminium Oxide (Al2O3)

This solid white powder is extremely tough (it forms gemstones like rubies and sapphires).

  • It reacts with: Both strong acids (HCl) and strong bases (NaOH) upon heating, forming salts or complex aluminates.
  • It does NOT react with: Water. It is completely insoluble and will not dissolve or hydrate in water.

Aluminium Hydroxide (Al(OH)3)

A gelatinous white precipitate often used in water purification and antacid medicines.

  • It reacts with: Acids and strong bases. Adding an acid converts it back to a clear salt solution, while adding a strong base dissolves it into a complex soluble ion [Al(OH)4].
  • It does NOT react with: Weak bases like ammonium hydroxide (NH3·H2O). Ammonia is not strong enough to dissolve aluminium hydroxide precipitate.

Binary Compounds (Carbides, Nitrides, Sulfides)

Compounds like aluminium carbide (Al4C3) or aluminium sulfide (Al2S3) are unstable in water. They undergo rapid complete hydrolysis:

Al4C3 + 12H2O → 4Al(OH)3↓ + 3CH4


Quick Reference Table

Substance Reacts With Does NOT React With
Aluminium Metal (Al) Dilute acids, strong alkalis (NaOH), non-metals (O2, Cl2) Cold conc. HNO3, pure water (due to film), H2
Aluminium Oxide (Al2O3) Strong acids, melted or dissolved alkalis Water, weak acids, weak bases
Aluminium Hydroxide (Al(OH)3) Strong acids, strong bases (NaOH) Water, weak bases like NH3·H2O

External Resources & Learn More

To explore more about aluminium’s properties and periodic table placement, visit these standard reference guides:

External Resources & Learn More

To explore more about aluminium’s properties and periodic table placement, visit these standard reference guides: