9. You have 0.6395 g of an unknown monoprotic acid, HA, which reacts with NaOH according to the balanced equation HA + NAOH → NaA + H20 If 39.24 mL of 0.1041 M NaOH is required to titrate the acid to the equivalence point, what is the molar mass of the acid?

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Chapter15: Acid-base Equilibria
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Problem 96AE: One method for determining the purity of aspirin (C9H8O4) is to hydrolyze it with NaOH solution and...
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9.
You have 0.6395 g of an unknown monoprotic acid, HA, which reacts with NaOH according to the
balanced equation
HA + NaOH→ NaA + H2O
If 39.24 mL of 0.1041 M NaOH is required to titrate the acid to the equivalence point, what is the molar
mass of the acid?
Transcribed Image Text:9. You have 0.6395 g of an unknown monoprotic acid, HA, which reacts with NaOH according to the balanced equation HA + NaOH→ NaA + H2O If 39.24 mL of 0.1041 M NaOH is required to titrate the acid to the equivalence point, what is the molar mass of the acid?
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