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What is the percent yield of ferrous sulfide if the actual yield is 220.0 g and the theoretical yield is 275.6 g? 12.5% 55.6% 79.8% 87.9%
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3 votes
What is the percent yield of ferrous sulfide if the actual yield is 220.0 g and the theoretical yield is 275.6 g?

12.5%

55.6%

79.8%

87.9%

User George Joseph
by
7.6k points

2 Answers

7 votes

Answer:

79.8% is the percent yield of ferrous sulfide.

Step-by-step explanation:

Percentage yield :


\frac{\text{Actual yield}}{\text{Theoretical yield}}* 100

Actual yield of ferrous sulfide = 220.0 g

Theoretical yield of ferrous sulfide = 275.6 g


\% (Yield)=(200.0 g)/(275.6 g)* 100

= 79.8%

79.8% is the percent yield of ferrous sulfide.

User Yentsun
by
7.8k points
4 votes
The percent yield is defined as:
((Actual Yield)/(Theoretical Yield)) * 100%
Plugging in our numbers we get:
(220.0 grams)/(275.6 grams) = 0.7983
Now multiply the quotient by 100%:
0.7983 * 100% = 79.83%
Closest answer is 79.8%
User Polis
by
7.7k points
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