Sulfur dioxide is a colourless, toxic gas that is soluble in water and more dense than air - Scottish Highers Chemistry - Question 5 - 2017

First, calculate the moles of sodium sulfite:

Mass of Na2SO3 = 0.40 g Molar mass of Na2SO3 = 126.1 g/mol.

Moles of Na2SO3 = ( \frac{0.40 , g}{126.1 , g/mol} = 0.00317 , mol )

From the reaction equation, 1 mole of Na2SO3 reacts with 2 moles of HCl. Therefore, 0.00317 moles of Na2SO3 would need:

Moles of HCl required = ( 2 \times 0.00317 , mol = 0.00634 , mol )

Now, calculate the moles of HCl provided in 50 cm³ (0.050 L) of 1 mol/L HCl:

Moles of HCl = concentration × volume = ( 1 , mol/L \times 0.050 , L = 0.050 , mol )

Since 0.00317 moles of Na2SO3 require 0.00634 moles of HCl but only 0.050 moles of HCl are available, Na2SO3 is the limiting reactant.

To calculate the enthalpy change, we need to apply Hess's law. The relevant equations are:

1. Forming CO2: C(s) + O2(g) → CO2(g) ΔH = −393.5 kJ mol⁻¹

2. Forming SO2: S(s) + O2(g) → SO2(g) ΔH = −296 kJ mol⁻¹

3. Formation of C2S2: C(s) + 2S(s) → C2S2(l) ΔH = +87.9 kJ mol⁻¹

Using Hess's law, we can summarize the reaction:

• Start with: ( 2SO2) (which we need to form) and adjust for enthalpy accordingly.
• The total enthalpy change will be derived from the addition and subtraction of the aforementioned enthalpy changes. The final calculation yields an enthalpy change of ΔH = -1075 kJ mol⁻¹.

From the graph provided, locate the solubility of sulfur dioxide at a temperature of 10 °C. At this temperature, the graph indicates a solubility of approximately 100 g l⁻¹.

Carbon dioxide (CO2) is a linear molecule with low polarity, which limits its interaction with polar water molecules. In contrast, sulfur dioxide (SO2) is a bent molecule, resulting in a greater polarity. This polarity allows sulfur dioxide to interact more effectively with water molecules, thus enhancing its solubility. Additionally, the dipole-dipole interactions in SO2 further increase its solubility compared to CO2.