Answer:
87.5 % is the percent yield
Explanation:
We convert the mass of H₂ to moles: 4 g / 2g/mol = 2 moles of H₂
The reaction is: CO(g) + 2H₂(g) → CH₃OH(l)
So ratio is 2:1. Therefore, If I have 2 moles of hydrogen I would produce 1 mol of methanol.
So, as molar mass of methanol is 32g/mol; 32 g is the mass of produced methanol, at the 100 % yield reaction (theoretical yield)
Percent yield will be: (produced yield/ theoretical yield) . 100
(28 g / 32g) . 100 = 87.5 %
Answer:
The percent yield of the reaction is 88.3 %
Explanation:
Step 1: Data given
Mass of H2 = 4.0 grams
Mass of CH3OH produced = 31.7 grams
Mass of CH3OH actually produced = 28.0 grams
Step 2: The balanced equation
CO(g) + 2 H2(g) → CH3OH(l)
Step 3: Calculate the percent yield
Percent yield = (actual mass CH3OH / theoretical mass CH3OH) * 100 %
Percent yield = (28.0 grams / 31.7 grams) * 100%
Percent yield = 88.3 %
The percent yield of the reaction is 88.3 %
