Respuesta :
Answer:
The options e and d are correct.
Explanation:
Mass of NiO = 7.5 g
Moles of NiO = [tex]\frac{7.5 g}{74.69 g/mol}=0.10 mol[/tex]
Moles of sulfuric acid = n
Volume of sulfuric acid ,V= 50 mL = 0.050 L
Molarity of sulfuric acid ,M = 6 mol/L
[tex]n=M\time V=6mol/L\times 0.050 L =0.3 mol[/tex]
[tex]NiO + H_2SO_4\rightarrow NiSO_4 + H_2O[/tex]
According to reaction, 1 mole of NiO reacts with 1 mole of sulfuric acid.
Then 0.10 moles of NiO reacts with :
[tex]\frac{1}{1}\times 0.10 mol/=0.10 mol[/tex] of sulfuric acid.
As we can see that sulfuric acid is in excess amount, so the amount of the product will depend upon amount of NiO.
According to reaction, 1 mole of NiO gives with 1 mole of [tex]NiSO_4[/tex].
Then 0.10 moles of NiO wil give :
[tex]\frac{1}{1}\times 0.10 mol/=0.10 mol[/tex] of [tex]NiSO_4[/tex].
Molar mass of [tex]NiSO_4[/tex] = 154.75 g/mol
Mass of 0.10 moles of [tex]NiSO_4[/tex]:
= 154.75 g/mol × 0.10 mol = 15.475 g
Theoretical mass of [tex]NiSO_4[/tex] = 15.475 g
Experimental yield of [tex]NiSO_4[/tex] = 17.4 g
Percentage yield :
[tex]\Yield=\frac{\text{Experimental mass}}{\text{Theoretical mass}}\times 100[/tex]
Percentage yield of [tex]NiSO_4[/tex]:
[tex]\Yield=\frac{17.4}{15.475 g}\times 100=112\%[/tex]
Moles of [tex]NiSO_4.6H_2O[/tex] = 262.85 g/mol × 0.10 mol = 26.285 g
Experimental yield of [tex]NiSO_4.6H_2O[/tex] = 17.4 g
Percentage yield of [tex]NiSO_4.6H_2O[/tex]:
[tex]\Yield=\frac{17.4}{26.285 g}\times 100=66.2\%[/tex]
