Periodic Trends
4. Metallic Character
Learning outcomes
- I can describe the characteristics of metallic behavior.
- I can explain how metallic character changes across periods and down groups.
- I can distinguish between metallic and non-metallic properties.
- I can relate metallic character to electron loss and ion formation.
- I can use periodic table trends to predict whether an element is likely to behave as a metal or non-metal.
What Is Metallic Character?
Metallic character describes how strongly an element shows the typical chemical and physical properties of a metal.
Elements with strong metallic character tend to:
- lose electrons relatively easily
- form positive ions
- conduct electricity and heat
- have a shiny appearance when freshly exposed
- be malleable or ductile when solid
- form metallic bonds in their elemental form
Metallic character is not identical for every metal. Some elements show stronger metallic behaviour than others.
The periodic table allows us to predict these differences.
Where Are Metals Found?
Most elements in the periodic table are metals.
They are found mainly on the left side and in the centre of the periodic table.
Non-metals are concentrated toward the upper-right side.
Between the metals and non-metals is a region containing elements called metalloids.
Metalloids have some properties associated with metals and some associated with non-metals.
Physical Properties of Metals
Metals share several characteristic physical properties.
Many metals are:
Good electrical conductors
Electric current can pass through them relatively easily.
Good thermal conductors
They transfer heat efficiently.
Malleable
They can often be hammered or pressed into sheets.
Ductile
They can often be drawn into wires.
Lustrous
Freshly exposed metal surfaces often appear shiny.
These properties result from the structure and bonding found in metals.
Metallic Bonding
In a metal, atoms are arranged in a large structure containing positive metal ions surrounded by delocalized electrons.
The outer electrons are not permanently attached to one particular atom.
Instead, they can move throughout the metallic structure.
This helps explain several metallic properties.
For example, mobile electrons allow metals to conduct electricity.
Why Metals Conduct Electricity
Electrical current involves the movement of charged particles.
In metals, the delocalized electrons can move through the structure.
When a potential difference is applied, these electrons have a net drift through the metal and carry electrical charge.
This is why metals such as copper and aluminium are widely used as electrical conductors.
Why Metals Are Malleable
Metals can often be hammered into different shapes without shattering.
This property is called malleability.
In metallic structures, layers of ions can shift relative to one another while the attraction between the positive ions and delocalized electrons continues to hold the structure together.
This is very different from many brittle ionic solids, which can fracture when layers are displaced.
Chemical Behaviour of Metals
Metallic character is not only about physical appearance.
Chemically, metals tend to lose electrons.
For example:
Na → Na⁺ + e⁻
Sodium loses one electron and forms a positive ion.
Magnesium loses two:
Mg → Mg²⁺ + 2e⁻
The tendency to lose electrons and form positive ions is a central feature of metallic character.
Metals Form Cations
A positively charged ion is called a cation.
Metal atoms commonly become cations because they lose negatively charged electrons.
For example:
Sodium:
Na → Na⁺ + e⁻
Magnesium:
Mg → Mg²⁺ + 2e⁻
Aluminium:
Al → Al³⁺ + 3e⁻
After electrons are removed, the atom has more protons than electrons and therefore has a positive charge.
Metallic Character and Electron Loss
The easier it is for an atom to lose its outer electrons, the stronger its metallic character generally is.
This connects metallic character to several periodic properties, including:
- atomic radius
- shielding
- effective nuclear attraction
- ionization energy
Atoms with low first ionization energies generally lose electrons more easily and tend to show stronger metallic behaviour.
Metallic Character Across a Period
A period is a horizontal row of the periodic table.
As we move from left to right across a period:
metallic character generally decreases.
Elements on the left tend to be strongly metallic.
Moving toward the right, elements become less metallic.
Eventually, we reach non-metals.
Example: Period 3
Period 3 provides a useful example.
It contains:
Na, Mg, Al, Si, P, S, Cl, Ar
Moving from left to right:
Na → Mg → Al → Si → P → S → Cl → Ar
Sodium, magnesium, and aluminium are metals.
Silicon has intermediate properties and is classified as a metalloid.
Phosphorus, sulfur, chlorine, and argon are non-metals.
This illustrates the decrease in metallic character across a period.
Why Metallic Character Decreases Across a Period
Across a period:
- proton number increases
- electrons are added to the same main energy level
- shielding does not increase as dramatically as it does down a group
- effective nuclear attraction generally increases
- atomic radius generally decreases
- first ionization energy generally tends to increase
As a result, outer electrons become more difficult to remove.
Therefore:
electron loss becomes less favourable
and:
metallic character decreases.
Periodic Trends Behind Metallic Character
Atomic radius and first ionization energy help us understand the trend.