Answer:
The percent yield of this reaction is 64.3 %
Explanation:
First of all we determine the reation:
4Al(s) + 3O₂(g) → 2Al₂O₃
2nd step: we determine the moles ( mass / molar mass )
0.156 g / 26.98 g/mol = 0.00578 moles
We assume O₂ as the excess reagent so the limiting is the Al
Ratio is 4:2 so now we make a rule of three
4 Al produce 2 moles of Al₂O₃
Then 0.00578 moles of Al must produce ( 0.00578 . 2) /4 = 0.00289 moles of oxide.
These moles are the 100 % yield reaction. Let' s convert the moles to mass
0.00289 mol . 101.96 g / mol = 0.294 g
This is the way to calculate the percent yield:
(Produced yield / Theoretical Yield ) . 100 : (0.189 g /0.294 g) .100 = 64.3 %
Answer:
The percent yield of this reaction is 64.1 %
Explanation:
Step 1: Data given
Mass of solid aluminium = 0.156 grams
Mass of aluminium oxide produced = 0.189 grams
Atomic mass of aluminium = 26.98 g/mol
Molar mass of aluminium oxide = 101.96 g/mol
Step 2: The balanced equation
4Al + 3O2 → 2Al2O3
Step 3: Calculate moles aluminium
Moles aluminium = mass aluminium / molar mass aluminium
Moles aluminium = 0.156 grams / 26.98 g/mol
Moles aluminium = 0.00578 moles
Step 4: Calculate moles aluminium oxide
For 4 moles aluminium we need 3 moles O2 to produce 2 moles Al2O3
For 0.00578 moles aluminium we'll have 0.00578/2 =0.00289 moles aluminium oxide
Step 5: Calculate mass of aluminium oxide
Mass Al2O3 = moles Al2O3 * molar mass Al2O3
Mass Al2O3 = 0.00289 moles * 101.96 grams
Mass Al2O3 = 0.295 grams
Step 6: Calculate percent yield
% yield = (actual yield / percent yield) * 100%
% yield = (0.189 grams / 0.295 grams) * 100 %
% yield = 64.1 %
The percent yield of this reaction is 64.1 %
