QUESTION IMAGE
Question
a scientist discusses the percent composition for iron oxide (fe₃o₄) shown in the following table.
what does this data show?
- there are 42.2 moles of o in fe₃o₄.
- for every 100 g of fe₃o₄, there are 27.8 g of o.
- for every 100 g of fe₃o₄, there are 66.7 g of fe.
- there are 67.8 moles remaining if o is removed.
- choose the best answer.
which of the following could not represent the percent composition of compound xy?
- 45.72% x and 59.28% y
- 70.85% x and 29.15% y
- 18.64% x and 81.36% y
- 55.55% x and 44.45% y
- choose the best answer.
which compound contains the highest percent composition of copper?
- cu₂s
- cus
- cus₂
- cu₂s₃
First Question (FeSO₄ Percent Composition Interpretation)
Step1: Define percent composition
Percent composition means, per 100 g of compound, the mass of each element equals its percentage value.
Step2: Match to options
For FeSO₄, 36.7% Fe means 36.7 g Fe per 100 g compound; 21.1% S means 21.1 g S per 100 g compound; 42.2% O means 42.2 g O per 100 g compound.
Step1: Check total percentage
Valid percent composition sums to 100%. Calculate total for each option:
- Option1: $45.72\% + 59.28\% = 105.00\%$
- Option2: $70.85\% + 29.15\% = 100.00\%$
- Option3: $18.55\% + 81.50\% = 100.05\%$
- Option4: $58.55\% + 41.45\% = 100.00\%$
Step2: Identify invalid total
A total over 100% cannot represent percent composition.
Step1: Calculate molar masses
- $\text{Cu}_2\text{O}$: $2\times63.55 + 16.00 = 143.10$ g/mol
- $\text{CuO}$: $63.55 + 16.00 = 79.55$ g/mol
- $\text{Cu}_2\text{S}$: $2\times63.55 + 32.07 = 159.17$ g/mol
- $\text{CuCl}_2$: $63.55 + 2\times35.45 = 134.45$ g/mol
Step2: Find Cu percent for each
- $\text{Cu}_2\text{O}$: $\frac{2\times63.55}{143.10} \times 100\% \approx 88.82\%$
- $\text{CuO}$: $\frac{63.55}{79.55} \times 100\% \approx 79.89\%$
- $\text{Cu}_2\text{S}$: $\frac{2\times63.55}{159.17} \times 100\% \approx 79.85\%$
- $\text{CuCl}_2$: $\frac{63.55}{134.45} \times 100\% \approx 47.27\%$
Step3: Compare percentages
Select the compound with the highest Cu percentage.
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For every 100 g of FeSO₄, there are 36.7 g of Fe.
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