Answer:
A. The theoretical yield of HF is 5.64g
B. The percentage yield of HF is 39%
Step-by-step explanation:
Step 1:
The balanced equation for the reaction:
CaF2 + H2SO4 --> CaSO4 + 2HF
Step 2:
Determination of the mass of CaF2 that reacted and the mass of HF produced from the balanced equation. This is illustrated below:
Molar Mass of CaF2 = 40 + (19x2) = 40 + 38 = 78g/mol
Molar Mass of HF = 1 + 19 = 20g/mol
Mass of HF from the balanced equation = 2 x 20 = 40g.
From the balanced equation above,
78g of CaF2 reacted and 40g of HF were produced.
A. Determination of the theoretical yield of HF.
This is illustrated below:
From the balanced equation above,
78g of CaF2 reacted to produce 40g of HF.
Therefore, 11g of CaF2 will react to produce = (11 x 40)/78 = 5.64g of HF.
The theoretical yield of HF is 5.64g
B. Determination of the percentage yield.
The percentage yield of HF can be obtained as follow:
Actual yield = 2.2g
Theoretical yield = 5.64g
Percentage yield =?
Percentage yield = Actual yield/Theoretical yield x100
Percentage yield = 2.2/5.64 x 100
Percentage yield = 39%
The percentage yield of HF is 39%