Phenylethanone can be prepared by the reaction between ethanoyl chloride and benzene - AQA - A-Level Chemistry - Question 33 - 2017 - Paper 3

The theoretical yield of phenylethanone is equal to the moles of ethanoyl chloride, since the reaction is a 1:1 conversion.

So, the theoretical yield in grams is:

$\text{mass} = \text{moles} \times \text{molar mass}$

The molar mass of phenylethanone (C₈H₈O) is approximately 120 g/mol, hence:

$\text{mass}_{\text{theoretical}} = 0.726 \text{ moles} \times 120 \text{ g/mol} = 87.1 \text{ g}$

The actual yield can be calculated using the percentage yield formula:

$\text{actual yield} = \left(\frac{\text{percentage yield}}{100}\right) \times \text{theoretical yield}$

Given the percentage yield is 62%, we have:

$\text{actual yield} = \left(\frac{62}{100}\right) \times 87.1 \text{ g} \approx 54.05 \text{ g}$