Answer:
72.2 % is the percent yield
Explanation:
Percent yield of a reaction is:
(Produced yield / Theoretical yield) . 100
The produced yield is 17.3 g of sulfurous acid.
Let's determine the theoretical yield. The reaction is:
SO₂(g) + H₂O(l) → H₂SO₃(g)
We convert the mass of sulfur dioxide to moles:
18.72 g / 64.06 g/mol = 0.292 moles.
As ratio is 1:1, for 0.292 moles of dioxide we can produce 0.292 moles of acid. Let's convert the moles to mass in order to determine the 100 % yield reaction. (Theoretical yield). 0.292 mol . 82.06 g/ 1 mol = 23.9 g
We replace data → (17.3 g / 23.9 g) . 100 = 72.2%
Answer:
The percent yield of the reactions is 72.1 %
Explanation:
Step 1: Data given
Mass of SO2 = 18.72 grams
Mass of H2SO3 produced = 17.3 grams
Molar mass of SO2 = 64.07 g/mol
Step 2: The balanced equation
SO2(g) + H2O(l) →H2SO3(g)
Step 3: Calculate moles SO2
Moles SO2 = mass SO2 / molar mass SO2
Moles SO2 = 18.72 grams / 64.07 g/mol
Moles SO2 = 0.2922 moles
Step 4: Calculate moles H2SO3
For 1 mol SO2 we need 1 mol H2O to produce 1 mol H2SO3
For 0.2922 moles SO2 we'll have 0.2922 moles H2SO3
Step 5: Calculate mass H2SO3
Mass H2SO3 = 0.2922 moles * 82.07 g/mol
Mass H2SO3 = 23.98 grams
Step 6: Calculate the percent yield
Percent yield = (actual mass/ theoretical mass) * 100%
Percent yield = ( 17.3 grams / 23.98 grams) * 100%
Percent yield = 72.1 %
The percent yield of the reactions is 72.1 %
