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What is the limiting and excess reactant if 15.0g of FePo4 reacts with 5.0g of Na2SO

What is the limiting and excess reactant if 15.0g of FePo4 reacts with 5.0g of Na-example-1
User Hanswim
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1 Answer

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Step-by-step explanation:

We are given: mass of FePO4 = 15g

: mass of Na2SO4 = 5g

We first find the mass of Fe2(SO4)3 from the mass of FePO4:

m is the mass and M is the molar mass


\begin{gathered} m\text{ = }(m(FePO4))/(M(FePO4))*\frac{1mol\text{ Fe2\lparen SO4\rparen3}}{2mol\text{ FePO4}}*\text{ M\lparen Fe2\lparen SO4\rparen3\rparen} \\ \text{ = }(15)/(150.82)*(1)/(2)*399.88 \\ \text{ = 19.89g} \end{gathered}

We then find the mass of Fe2(SO4)3 from Na2SO4:


\begin{gathered} m\text{ = }(m(Na2SO4))/(M(Na2SO4))*\frac{1mol\text{ Fe2\lparen SO4\rparen3}}{3mol\text{ Na2SO4}}* M(Fe2(SO4)3) \\ \text{ =}(5)/(142.04)*(1)/(3)*399.88 \\ \text{ = 4.69g} \end{gathered}

Answer:

Therefore, FePO4 is the excess reactant and Na2SO4 is the limiting reactant

User Nico Diz
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