
Percent Calculation
Presentation
•
Chemistry
•
10th Grade
•
Hard
Joseph Anderson
FREE Resource
5 Slides • 6 Questions
1
9.5 Percent Yield
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Percent Yield
In most reactions, some product is lost due to incomplete reactions or side reactions.
Theoretical yield is the amount of product that you SHOULD get (it's calculated).
Actual yield is the amount that you actually obtained, as the name implies.
3
If we can theoretically produce 43.1 grams of NH3 in a reaction, but the actual yield is 26.0 grams of NH3, what is the % yield?
Example:
4
H2S is the limiting reactant (because sufficient oxygen is present).
45.5 g SO2 is the actual yield.
We still need the theoretical yield (we have to calculate this).
Let's identify the #'s:
If 60.0 g of H2S reacts with sufficient oxygen and produces 45.5 g of SO2, what is the percent yield of SO2?
2H2S(g) + 3O2(g) --> 2SO2(g) + 2H2O(g)
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6
When 60.0 g of H2S reacts, you SHOULD produce 113 grams of SO2.
This is the theoretical yield. This is what you would obtain in a perfect world.
theoretical yield:
If 60.0 g of H2S reacts with sufficient oxygen and produces 45.5 g of SO2, what is the percent yield of SO2?
2H2S(g) + 3O2(g) --> 2SO2(g) + 2H2O(g)
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9.5 Percent Yield
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