Important Groups
1. Group 1: Alkali Metals
Learning outcomes
- I can identify the alkali metals on the periodic table.
- I can describe the physical and chemical properties of alkali metals.
- I can explain why alkali metals form ions.
- I can describe how the reactivity of alkali metals changes down the group.
- I can explain observations from reactions involving alkali metals.
What Are the Alkali Metals?
The alkali metals are the metallic elements found in Group 1 of the periodic table.
They include:
- lithium (Li)
- sodium (Na)
- potassium (K)
- rubidium (Rb)
- caesium (Cs)
- francium (Fr)
Hydrogen is also located in Group 1 because it has one valence electron, but it is not classified as an alkali metal.
The alkali metals share many similar chemical properties because they all have one electron in their outer shell.
Finding Group 1 on the Periodic Table
Group 1 is the first vertical column on the left side of the periodic table.
Moving down the group:
Li → Na → K → Rb → Cs → Fr
These elements show clear patterns in their physical and chemical properties.
This is an example of periodicity: repeating patterns of properties across the periodic table.
Electron Arrangements of Alkali Metals
All alkali metals have one valence electron.
For example:
Lithium:
2,1
Sodium:
2,8,1
Potassium:
2,8,8,1
Although these atoms have different numbers of occupied electron shells, they all have the same basic outer-shell pattern:
one outer electron
This explains many of their similar chemical properties.
Why Elements in the Same Group Behave Similarly
Chemical reactions usually involve an atom's outer electrons.
Because every alkali metal has one valence electron, they tend to undergo similar reactions.
In particular, Group 1 metals tend to:
lose one electron
and form:
+1 ions
For example:
Li → Li⁺ + e⁻
Na → Na⁺ + e⁻
K → K⁺ + e⁻
This is one of the defining chemical behaviours of Group 1.
Why Alkali Metals Form +1 Ions
Consider sodium.
Its electron arrangement is:
2,8,1
Sodium can lose its single outer electron.
After losing that electron, its arrangement becomes:
2,8
The sodium atom originally has equal numbers of protons and electrons, so it is neutral.
When it loses one negatively charged electron, it has one more proton than electrons.
Therefore, it has a charge of:
+1
and becomes:
Na⁺
Group 1 Ion Formation
The general process can be written:
M → M⁺ + e⁻
where M represents a Group 1 metal.
For example:
Li → Li⁺ + e⁻
Na → Na⁺ + e⁻
K → K⁺ + e⁻
All alkali metals therefore typically form ions with a:
+1 charge
These positive ions are called cations.
Physical Properties of Alkali Metals
Alkali metals share several physical properties.
They are generally:
- soft
- relatively low in density compared with many other metals
- shiny when freshly cut
- good conductors of electricity
- good conductors of heat
- solids at room temperature
- relatively low-melting compared with many other metals
Although they are metals, they are very different from strong structural metals such as iron.
Alkali Metals Are Soft
Many metals are hard and strong.
Alkali metals are unusual because they are very soft.
Lithium, sodium, and potassium can be cut relatively easily.
A freshly cut surface appears shiny because the newly exposed metal reflects light.
However, this shiny surface does not usually remain visible for long.
Why the Surface Becomes Dull
Alkali metals react with substances in the air.
For example, they can react with oxygen and moisture.
As reaction products form on the surface, the metal loses its shiny appearance and becomes dull or tarnished.
This means an observation such as:
"The freshly cut surface quickly became dull."
provides evidence that the metal is reacting with substances in the air.
Storage of Alkali Metals
Because alkali metals react readily with oxygen and water, laboratory samples are often stored under a suitable hydrocarbon oil.
The oil helps prevent contact with:
- oxygen
- water vapour
- moisture
This slows unwanted reactions during storage.
Density of Alkali Metals
Alkali metals have relatively low densities compared with many familiar metals.
Lithium, sodium, and potassium are particularly low-density metals.
This affects observations during reactions with water.
For example, sodium and potassium can float on water.
Floating is an observation related to density rather than evidence by itself of chemical reactivity.
Melting Points
Alkali metals have relatively low melting points compared with many other metals.
The melting points generally decrease down Group 1.
This can affect what we observe during reactions.
For example, sodium may melt into a small ball during its reaction with water because the reaction releases heat and sodium has a relatively low melting point.
Chemical Properties of Alkali Metals
Alkali metals are reactive metals.
They readily participate in reactions in which they lose their outer electron.
Important reactions include reactions with:
- water
- oxygen
- halogens
These reactions usually produce compounds containing M⁺ ions.
Reaction with Water
One of the most characteristic reactions of Group 1 metals is their reaction with water.
The general word equation is:
alkali metal + water → metal hydroxide + hydrogen
For lithium:
lithium + water → lithium hydroxide + hydrogen
For sodium:
sodium + water → sodium hydroxide + hydrogen
For potassium:
potassium + water → potassium hydroxide + hydrogen
General Equation for the Reaction with Water
Using M to represent a Group 1 metal:
2M + 2H₂O → 2MOH + H₂
For sodium:
2Na + 2H₂O → 2NaOH + H₂
The products are:
- sodium hydroxide
- hydrogen gas
Why the Solution Becomes Alkaline
The metal hydroxide produced during the reaction dissolves in the water.
For example, sodium produces:
sodium hydroxide, NaOH
Sodium hydroxide forms an alkaline solution.
This is where the name:
alkali metals
comes from.
They produce alkaline hydroxides when they react with water.
Testing the Solution
An indicator can be used to show that the solution produced is alkaline.
For example, universal indicator would show a colour associated with high pH.
The observation provides evidence that an alkaline metal hydroxide has formed.
Lithium and Water
Lithium reacts with water.
Typical observations include:
- lithium floats
- it moves slowly across the surface
- bubbles of gas are produced
- the metal gradually becomes smaller
- it eventually disappears
The bubbles are caused by the production of:
hydrogen gas
The lithium disappears because lithium atoms are being converted into lithium ions in solution as lithium hydroxide forms.
Sodium and Water
Sodium reacts more vigorously with water than lithium.
Typical observations include:
- sodium floats
- rapid fizzing occurs
- sodium moves across the surface
- the metal often forms a small ball
- the metal eventually disappears
Why does sodium form a ball?
The reaction releases heat.
Sodium has a relatively low melting point.
The heat can therefore melt the sodium.
Surface tension then causes the liquid metal to form a roughly spherical shape.
Potassium and Water
Potassium reacts even more vigorously with water.
Typical observations can include:
- very rapid movement
- vigorous fizzing
- enough heat for the hydrogen or potassium to ignite
- a characteristic lilac flame may be observed
These observations show that potassium reacts more vigorously than sodium or lithium.
Explaining the Bubbles
During the reaction:
metal + water → metal hydroxide + hydrogen
Therefore, the bubbles observed are:
hydrogen gas
For sodium:
2Na + 2H₂O → 2NaOH + H₂
Gas production causes the visible fizzing.
More vigorous gas production generally indicates a faster reaction.
Testing for Hydrogen
Hydrogen gas can be identified using a burning splint.
Hydrogen burns rapidly in oxygen and can produce a characteristic squeaky pop under appropriate small-scale test conditions.
Therefore, collecting and identifying the gas provides evidence that hydrogen is one of the reaction products.
Reactivity Down Group 1
The most important chemical trend is:
reactivity increases down Group 1.
Therefore:
Li < Na < K < Rb < Cs
Lithium is less reactive than sodium.
Sodium is less reactive than potassium.
Potassium is less reactive than rubidium.
The trend continues down the group.
Why Reactivity Increases Down Group 1
All alkali metals react by losing their single outer electron.
Moving down Group 1:
- the number of occupied electron shells increases
- atomic radius increases
- shielding increases
- the outer electron becomes farther from the nucleus
- the effective attraction between the nucleus and outer electron decreases
Therefore, the outer electron becomes easier to remove.
The easier the electron is to remove, the more readily the metal reacts.
Visualizing the Periodic Trend
The change in atomic radius and first ionization energy helps explain the Group 1 reactivity pattern.