1. Trends Down Group 2 (The Alkaline Earth Metals)
The elements of Group 2 (Magnesium to Barium) possess two valence electrons in their outermost \(s\) orbital (\(ns^2\)).
- Atomic radius increases down the group as extra electron shells are added.
- First and second ionisation energies decrease down the group due to increased shielding and greater distance from the nucleus.
- Reactivity increases down the group because less energy is required to remove the two outer electrons.
2. Reactions with Water and Steam
Reaction with Cold Water
Group 2 metals react with liquid water to produce metal hydroxides and hydrogen gas:
\[ \text{M}(s) + 2\text{H}_2\text{O}(l) \rightarrow \text{M(OH)}_2(aq) + \text{H}_2(g) \]
- Magnesium: Reacts extremely slowly with cold water over days, forming a weakly alkaline suspension of \(\text{Mg(OH)}_2\).
- Calcium: Reacts vigorously with cold water. The liquid turns cloudy as sparingly soluble \(\text{Ca(OH)}_2\) precipitates.
- Barium: Reacts vigorously and exothermically, forming a clear alkaline solution of soluble \(\text{Ba(OH)}_2\).
Magnesium Reaction with Steam
Crucial Distinction: Magnesium with Steam
When heated in steam, magnesium reacts rapidly and vigorously, burning with an intense bright white flame to produce magnesium oxide (a white solid) and hydrogen gas:
\[ \text{Mg}(s) + \text{H}_2\text{O}(g) \rightarrow \text{MgO}(s) + \text{H}_2(g) \]
Notice that magnesium oxide (\(\text{MgO}\)) is produced with steam, whereas magnesium hydroxide (\(\text{Mg(OH)}_2\)) is produced with liquid water!
3. Opposing Solubility Trends
A classic OxfordAQA exam requirement is mastering the opposing solubility patterns of Group 2 hydroxides versus sulfates:
Hydroxides: Solubility INCREASES Down
- \(\text{Mg(OH)}_2\) is sparingly soluble (suspension).
- \(\text{Ca(OH)}_2\) is slightly soluble (limewater).
- \(\text{Ba(OH)}_2\) is freely soluble, forming a strongly alkaline solution.
Sulfates: Solubility DECREASES Down
- \(\text{MgSO}_4\) is highly soluble.
- \(\text{CaSO}_4\) is sparingly soluble.
- \(\text{BaSO}_4\) is completely insoluble, forming a dense white precipitate.
4. Industrial and Medical Applications
1. Barium Sulfate (\(\text{BaSO}_4\)) as a Barium Meal
Barium sulfate is administered to patients as a radio-opaque contrast agent for X-ray imaging of the digestive system. Although free \(\text{Ba}^{2+}\) ions are highly poisonous, \(\text{BaSO}_4\) is completely insoluble in water, so it passes harmlessly through the gut without entering the bloodstream.
2. Magnesium Hydroxide (\(\text{Mg(OH)}_2\)) in Medicine
Used as an antacid (Milk of Magnesia) to treat indigestion and heartburn. It neutralises excess stomach hydrochloric acid (\(\text{Mg(OH)}_2 + 2\text{HCl} \rightarrow \text{MgCl}_2 + 2\text{H}_2\text{O}\)). Because it is only sparingly soluble, it does not create a hazardous caustic environment in the gut.
3. Calcium Hydroxide (\(\text{Ca(OH)}_2\)) in Agriculture
Known as slaked lime, it is spread on acidic fields to raise soil pH and optimise crop yields.
4. Titanium Extraction Using Magnesium (Kroll Process)
Titanium cannot be extracted by reducing titanium dioxide with carbon because brittle titanium carbide (\(\text{TiC}\)) would form. Instead, titanium is extracted in a multi-step process using magnesium:
- \(\text{TiO}_2\) is converted to titanium(IV) chloride: \[ \text{TiO}_2(s) + 2\text{Cl}_2(g) + 2\text{C}(s) \rightarrow \text{TiCl}_4(l) + 2\text{CO}(g) \]
- \(\text{TiCl}_4\) is purified by fractional distillation.
- \(\text{TiCl}_4\) is reduced by molten magnesium in an inert argon atmosphere at approximately \(1000^\circ\text{C}\): \[ \text{TiCl}_4(g) + 2\text{Mg}(l) \rightarrow \text{Ti}(s) + 2\text{MgCl}_2(l) \]
5. Flue Gas Desulfurisation (FGD)
Waste gases from coal-fired power stations contain acidic sulfur dioxide (\(\text{SO}_2\)). It is removed by spraying with an alkaline slurry of calcium oxide or calcium carbonate:
\[ \text{CaO}(s) + \text{SO}_2(g) \rightarrow \text{CaSO}_3(s) \]
\[ \text{CaCO}_3(s) + \text{SO}_2(g) \rightarrow \text{CaSO}_3(s) + \text{CO}_2(g) \]
5. Practice Questions
Explanation: Barium sulfate is completely insoluble in water. Therefore, no toxic free \(\text{Ba}^{2+}\) ions dissolve into the bloodstream. (1 mark)
Ionic equation: \[ \mathbf{\text{Ba}^{2+}(aq) + \text{SO}_4^{2-}(aq) \rightarrow \text{BaSO}_4(s)} \] (1 mark for formulae, 1 mark for state symbols).