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Chemistry 9.5 Percent Yield

Chemistry 9.5 Percent Yield

Assessment

Presentation

Chemistry

10th Grade

Practice Problem

Hard

NGSS
HS-PS1-7

Standards-aligned

Created by

Nicole Woltschlaeger

Used 11+ times

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)

5

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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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11

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9.5 Percent Yield

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