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6 votes
6 votes
2). H2S and SO2 as follows,(8pt)

H2S + SO2 ------>S + H2O

In a particular experiment, 7.95 g of sulfur is produced by the reaction of 7.5 g of H2S with 12.75 g of SO2.


What is the % yield of sulfur?

User Andres
by
2.4k points

1 Answer

19 votes
19 votes

Answer: 75.7 % yield

Step-by-step explanation:

The balanced chemical equation is:


2H_2S+SO_2\rightarrow 3S+2H_2O

According to stoichiometry :

68.2 g of
H_2S will require = 64 g of
SO_2

Thus 7.5 g of
H_2S will require =
(64)/(68.2)* 7.5=7.0g of
SO_2

Thus is the limiting reagent as it limits the formation of product and is the excess reagent.

As 68.2 g of give = 96 g of

Thus 7.5 g of
H_2S give =
(96)/(68.2)* 7.5=10.5g of
S

% yield=
\frac{\text{Actual yield}}{\text {Theoretical yield}}* 100=(7.95g)/(10.5g)* 100=75.7\%

Thus 75.7 % yield is there.

User Hamad
by
3.0k points