A student was synthesizing Aspirin (C9H8O4) in the laboratory produced by the reaction of salicylic acid (C7H6O3) and acetic anhydride (C4H6O3). Using 4.0 g of salicylic acid as the limiting reactant, determine the theoretical yield. When the student weighed the aspirin product on the balance, the mass was 7.44g. C7H6O3(s) + C4H6O3(l) → C9H8O4(s) + CH3CO2H(aq) [Molar masses: 138.1 102.1 a) What is the actual yield of aspirin? b) What is the theoretical yield of aspirin? c) Calculate the percent yield for this synthesis?

World of Chemistry
7th Edition
ISBN:9780618562763
Author:Steven S. Zumdahl
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Chapter9: Chemical Quantities
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Problem 49A
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A student was synthesizing Aspirin (C9H8O4) in the laboratory produced by the reaction of salicylic acid (C7H6O3) and acetic anhydride (C4H6O3).
Using 4.0 g of salicylic acid as the limiting reactant, determine the theoretical yield. When the student weighed the aspirin product on the balance, the mass was 7.44g.
C7H6O3(s) + C4H6O3(l) → C9H8O4(s) + CH3CO2H(aq)
[Molar masses: 138.1 102.1
a) What is the actual yield of aspirin?
b) What is the theoretical yield of aspirin?
c) Calculate the percent yield for this synthesis?

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