How Many Moles of Copper Are Produced from 4.8 Moles of Aluminum?

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In the chemical reaction 3CuCl2(aq) + 2Al(s) --> 2AlCl3(aq) + 3Cu(s), 4.8 moles of aluminum will produce a maximum of 3 moles of copper, as the copper yield is limited by the stoichiometry of the reaction. For producing 12.7 grams of copper, approximately 3.6 grams of aluminum are required. The calculations involve converting grams of copper to moles and then using the stoichiometric ratios to find the necessary aluminum. The discussion highlights the importance of understanding the coefficients in a balanced chemical equation, which dictate the ratios of reactants and products. Overall, the key takeaway is that the amount of copper produced is constrained by the reaction's stoichiometry, regardless of the excess aluminum.
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Homework Statement


3CuCl2(aq) + 2Al(s) --> 2AlCl3(aq) + 3Cu(s)

a) If 4.8 mol of Al react in the process, how many moles of Cu are produced?
b) How many grams of Al will be necessary in order to produce 12.7g of Copper?

Homework Equations





The Attempt at a Solution


a) This one is tricky in that I originally did 4.8/2Al X 3Cu = 7.2mol of Cu but then I realized that there is still only 3mol of Cu present as a reactant regardless of the concentration of Al. So I would assume the 3Cu would stay the same.

b) 12.7/63.5 gr Cu= 0.2mol Cu
0.2mol Cu x 2Al/3Cu = 0.13mol Al
0.13mol Al x 27gr/mol = 3.6gr Al for 12.7gr of Cu

How does that look?
 
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Jimbo57 said:
This one is tricky in that I originally did 4.8/2Al X 3Cu = 7.2mol of Cu but then I realized that there is still only 3mol of Cu present as a reactant

Where is it stated?

b) 12.7/63.5 gr Cu= 0.2mol Cu
0.2mol Cu x 2Al/3Cu = 0.13mol Al
0.13mol Al x 27gr/mol = 3.6gr Al for 12.7gr of Cu

How does that look?

Much better.
 
Hey Borek,

I was assuming that 3CuCl2(aq) meant there was 3 mol copper present, but I'm guessing that isn't the case (I'm very new to this). So my original assumption is the better one?
4.8/2Al X 3Cu = 7.2mol of Cu
 
Yes. Coefficients don't say anything about the amounts - only about their ratios during reaction.
 
Borek said:
Yes. Coefficients don't say anything about the amounts - only about their ratios during reaction.

Thanks for the help :)
 

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