This question is about silver iodide - AQA - A-Level Chemistry - Question 1 - 2017 - Paper 1

To calculate the enthalpy of lattice formation for silver iodide (AgI), we can use Hess's law. The reaction can be represented as: $\text{AgI}(s) \rightarrow \text{Ag}^+(aq) + \text{I}^-(aq)$ Using the values from Table 1:

• Enthalpy of dissolution of AgI(s): +112 kJ/mol
• Enthalpy of formation from element Ag(g): -464 kJ/mol
• Enthalpy of formation from element I(g): -293 kJ/mol

So the enthalpy of lattice formation (ΔH_lattice) can be calculated as: $\text{ΔH}_{lattice} = \text{ΔH}_{AgI} + \text{ΔH}_{Ag^+} + \text{ΔH}_{I^-}$ Plugging in the numbers: $\text{ΔH}_{lattice} = (+112) - 464 - 293 = -645 \text{ kJ/mol}$

The difference occurs because a perfect ionic model assumes that all ionic interactions are purely electrostatic and does not take into account the covalent character of the bond. In reality, ionic compounds may have some degree of covalent character due to polarization, which results in stronger bonding and hence a more negative enthalpy of lattice formation than predicted by the ideal model.

Reagent: Starch solution

Observation: A blue-black coloration is observed when iodide ions are present in the solution due to the formation of a starch-iodine complex.