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In this reaction: Mg (s) + I₂ (s) → MgI₂ (s), if 10.0 g of Mg reacts with 60.0 g of I₂, and 53.88 g of MgI₂ form, what is the percent yield?
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18 votes
18 votes
In this reaction: Mg (s) + I₂ (s) → MgI₂ (s), if 10.0 g of Mg reacts with 60.0 g of I₂, and 53.88 g of MgI₂ form, what is the percent yield?

User Geomorillo
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2 Answers

22 votes
22 votes
  • Mass of reactants=10+60=70.0g
  • Mass of MgI_2=53.88g
  • Yield=70-53.88=16.12g

Percentage


\\ \tt\hookrightarrow (16.12)/(70)* 100=23.02\%

Yield percentage is 23.02%

User KamalDeep
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3.0k points
26 votes
26 votes

Answer:

I don't know please very sorry for your birthday

User Sachin Malhotra
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2.8k points
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