18. Consider the following reaction: I2O5(9) + 5 CO(9) → 5 CO2(9) + I2(9) a. If 80.0 grams of iodine (V) oxide, I2O5, reacts with 28.0 grams of carbon monoxide, CO, determine the mass of iodine, I2, that will be produced. b. If in the above situation, only 0.160 moles of iodine was produced: i. What mass of iodine was produced? ii. Calculate the percentage yield of iodine.

Chemistry for Engineering Students
4th Edition
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter3: Molecules, Moles, And Chemical Equations
Section: Chapter Questions
Problem 3.87PAE: 3.87 Nitric acid (HNO3) can be produced by the reaction of ni- trogen dioxide (NO2) and water....
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I = 126.90g /mol

C = 12.01g /mol

O = 16.00g /mol

18. Consider the following reaction:
I2OS(g) + 5 CO(g) → 5 CO2(g) + I2(g)
a. If 80.0 grams of iodine (V) oxide, I2O5, reacts with 28.0 grams of carbon
monoxide, CO, determine the mass of iodine, I2, that will be produced.
b. If in the above situation, only 0.160 moles of iodine was produced:
i. What mass of iodine was produced?
ii. Calculate the percentage yield of iodine.
Transcribed Image Text:18. Consider the following reaction: I2OS(g) + 5 CO(g) → 5 CO2(g) + I2(g) a. If 80.0 grams of iodine (V) oxide, I2O5, reacts with 28.0 grams of carbon monoxide, CO, determine the mass of iodine, I2, that will be produced. b. If in the above situation, only 0.160 moles of iodine was produced: i. What mass of iodine was produced? ii. Calculate the percentage yield of iodine.
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