The heat of combustion of ethanol is 1367 kJ mol⁻¹ - HSC - SSCE Chemistry - Question 17 - 2005 - Paper 1

To calculate the mass of ethanol required, we can use the formula:

$q = mcΔT$

Where:

• $q$ is the heat absorbed by water
• $m$ is the mass of water
• $c$ is the specific heat capacity of water (4.18 kJ/kg°C)
• $ΔT$ is the change in temperature.

1. Calculate the change in temperature: $ΔT = 45.0°C - 21.0°C = 24.0°C$

2. Calculate the heat absorbed by the water:

   • The mass of 200 mL of water is 0.2 kg. $q = (0.2 ext{ kg}) imes (4.18 ext{ kJ/kg°C}) imes (24.0°C) = 20.096 ext{ kJ}$

3. Knowing the heat of combustion of ethanol is 1367 kJ/mol, we find the moles of ethanol required:

   • From $q = n imes ext{heat of combustion}$: n = rac{q}{ ext{heat of combustion}} = rac{20.096 ext{ kJ}}{1367 ext{ kJ/mol}} ≈ 0.0147 ext{ mol}

4. Finally, we convert moles of ethanol to mass. The molar mass of ethanol (C₂H₅OH) is about 46.07 g/mol: $ext{mass} = n imes ext{molar mass} = 0.0147 ext{ mol} imes 46.07 ext{ g/mol} ≈ 0.678 ext{ g}$

Thus, the theoretical mass of ethanol required is approximately 0.678 g.