Answer:
[tex]Y=48.6\%[/tex]
Explanation:
Hello,
In this case, we can consider the following chemical reaction for the oxidation of copper which only occurs at high temperatures:
[tex]2Cu+O_2\rightarrow 2CuO[/tex]
In such a way, for 0.032 grams of copper, the following grams of copper (II) oxide (black product) are yielded:
[tex]m_{CuO}=0.032gCu*\frac{1molCu}{63.546gCu} *\frac{2molCuO}{2molCu}*\frac{79.546gCuO}{1molCuO} =0.078gCuO[/tex]
Therefore, the percent yield is:
[tex]Y=\frac{0.038g}{0.078g}*100\%\\ \\Y=48.6\%[/tex]
Best regards.
