Divide 39.8 g by the atomic weight of Li, 6.94 g/mole. That gives you 5.735 moles of lithium reactant.
You form the same number of moles of LiCl product.
I balanced
Li(s) + Cl2(g)= LiCl(s) to
2Li(s) + Cl2(g)= 2LiCl(s)
Now the question is, if you have 39.8g Li, how many moles of LiCl would you have?
I am stuck on this part. Any help would be appreciated.
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Thank you!
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