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Question
when powdered zinc is heated with sulfur, a violent reaction occurs, and zinc sulfide forms:
\\ \text{zn}(s) + \text{s}_8(s) \
ightarrow \text{zns}(s) \quad \text{unbalanced} \\
some of the reactants also combine with oxygen in air to form zinc oxide and sulfur dioxide. when \\(83.2\text{ g}\\) of \\(\text{zn}\\) reacts with \\(52.4\text{ g}\\) of \\(\text{s}_8\\), \\(109.2\text{ g}\\) of \\(\text{zns}\\) forms.
part 1 of 3
what is the percent yield of \\(\text{zns}\\)? be sure your answer has the correct number of significant figures.
part 2 of 3
if all the remaining reactants combine with oxygen, how many grams of \\(\text{zno}\\) form? be sure your answer has the correct number of significant figures.
Balance the main chemical equation
We balance the reaction of zinc with sulfur:
Using the Chemical Equation Balancing knowledge point, the stoichiometric ratio is \(8\text{ moles of Zn} : 1\text{ mole of S}_8 : 8\text{ moles of ZnS}\).
Determine the limiting reactant
Using the Limiting Reactant Stoichiometry knowledge point, we calculate the initial moles of each reactant:
- Molar mass of \(\text{Zn} = 65.38\text{ g/mol}\)
- Molar mass of \(\text{S}_8 = 8 \times 32.065 = 256.52\text{ g/mol}\)
We compare the mole ratios to find the limiting reactant:
- Moles of \(\text{Zn}\) needed to react completely with \(0.20427\text{ mol of S}_8\):
Since we only have \(1.2726\text{ mol of Zn}\), \(\text{Zn}\) is the limiting reactant.
Calculate the percent yield of ZnS
Using the Percent Yield Calculations knowledge point, we find the theoretical yield of \(\text{ZnS}\) based on the limiting reactant \(\text{Zn}\):
- Molar mass of \(\text{ZnS} = 65.38 + 32.065 = 97.445\text{ g/mol}\)
- Theoretical moles of \(\text{ZnS}\) formed:
- Theoretical mass of \(\text{ZnS}\):
- Percent yield:
Rounding to three significant figures gives \(88.1\%\).
Calculate the remaining reactants
Using the Stoichiometry knowledge point, we determine how much of each reactant was consumed to form the actual \(109.2\text{ g of ZnS}\):
- Actual moles of \(\text{ZnS}\) formed:
- Moles of \(\text{Zn}\) consumed:
- Remaining moles of \(\text{Zn}\):
- Moles of \(\text{S}_8\) consumed:
- Remaining moles of \(\text{S}_8\):
Calculate the mass of ZnO formed
The remaining zinc reacts with oxygen to form zinc oxide (\(\text{ZnO}\)):
- The mole ratio of \(\text{Zn}\) to \(\text{ZnO}\) is \(1:1\).
- Moles of \(\text{ZnO}\) formed:
- Molar mass of \(\text…
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Question 1
\(88.1\%\)
Question 2
\(12.4\text{ g}\)