Answer:
147 g of [tex]AlCl_{3}[/tex] are produced with 86.52% yield.
Explanation:
1. Write the balanced chemical reaction for the aluminum consumed in the presence of copper II chloride dihydrate:
[tex]2Al+3Cl_{2}CuH_{4}O_{2}=2Cu+2AlCl_{3}+6H_{2}O[/tex]
2. Calculate the maximum quantity of [tex]AlCl_{3}[/tex] that can be produced:
The limiting reagent is the Al, because the problem says that there are excess of copper II chloride dihydrate [tex]Cl_{2}CuH_{4}O_{2}[/tex]
[tex]34.51gAl*\frac{1molAl}{27gAl}*\frac{2molesAlCl_{3}}{2molesAl}*\frac{133gAlCl_{3}}{1molAlCl_{3}}=170gAlCl_{3}[/tex]
3. Calculate the quantity of [tex]AlCl_{3}[/tex] produced ith 86.52% yield:
[tex]170gAlCl_{3}*\frac{86.52}{100}=147gAlCl_{3}[/tex]
