Answer:
The theoretical yield of alum is 19.873 grams and percent yield for this alum synthesis is 45.33%.
Explanation:
Mass of bottle = 10.221 g
Mass of bottle with aluminium pieces = 11.353 g
Mass of aluminium = 11.353 g - 10.221 g = 1.132 g
Mass of alum and bottle = 19.230 g
Mass of alum = 19.230 g - 10.221 g = 9.009 g
Experimental yield of alum = 9.009 g
Theoretical yield of alum:
[tex]2Al(s) +2 KOH(aq) +4H_2SO_4(aq)+10 H_2O(l) \rightarrow 2 KAl(SO_4)_2.12 H_2O(s)+3H_2(g)[/tex]
Moles of aluminium = [tex]\frac{1.132 g}{27 g/mol}=0.041926 mol[/tex]
According to reaction, 2 moles of aluminum gives 2 moles of alum.
Then 0.041926 mol aluminium will give :
[tex]\frac{2}{2}\times 0.041926 mol=0.041926 mol[/tex] of alum.
Mass of 0.041926 moles of alum:
0.041926 mol × 474 g/mol= 19.873 g
Theoretical yield of alum = 19.873 g
Percentage yield:
[tex]\% Yield =\frac{\text{Experimental yield}}{\text{Theoretical yield}}\times 100[/tex]
Percentage yield of the alum:
[tex]\% Yield =\frac{ 9.009 g}{19.873 g}\times 100=45.33\%[/tex]
The theoretical yield of alum is 19.873 grams and percent yield for this alum synthesis is 45.33%.
