The theoretical yield of disulfide dichloride is 8.53 grams.
The percent yield of the reaction is 76.8%.
Explanation:
Given:
The reaction between 4.06 grams of octasulfur and 6.24 grams of chlorine gas give 6.24 grams of disulfide dichloride.
To find:
The theoretical yield and percent yield of the reaction.
Solution:
The mass of octasulfur= 4.06 g
The molar mass of octasulfur=[tex]\frac{4.06 g}{256.52 g/mol}=0.0158 mol[/tex]
The mass of chlorine gas = 6.24 g
The moles of chlorine gas =[tex]\frac{6.24 g}{70.906 g/mol}=0.0880 mol[/tex]
[tex]S_8(l) + 4Cl_2 (g) \rightarrow 4S_2Cl_2(l)[/tex]
According to reaction,1 mole of octasulfur reacts with 4 moles of chlorine gas, then 0.0158 moles of octasulfur will react with:
[tex]=\frac{4}{1}\times 0.0158 mol=0.0632 \text{mol of}Cl_2[/tex]
But we are having 0.0880 moles of chlorine gas and only 0.0632 moles of chlorine gas will be used in a reaction which means that the chlorine gas is present in an excess amount, hence an excessive reagent and octasulfur is limiting reagent.
The theoretical yield of disulfide dichloride will depend upon the moles of octasulfur.
According to the reaction, 1 mole of octasulfur gives 4 moles of disulfide dichloride then 0.0158 moles octasulfur will give:
[tex]=\frac{4}{1}\times 0.0158 mol=0.0632 \text{mol of}S_2Cl_2[/tex]
The mass of 0.0632 moles of disulfide dichloride:
[tex]=0.0632 mol\times 135.04 g/mol=8.53 g[/tex]
The theoretical yield of disulfide dichloride = 8.53 g
The theoretical yield of disulfide dichloride is 8.53 g
The actual yield of disulfide dichloride = 6.55 g
The percent yield of the reaction:
[tex]Yield(\%)=\frac{\text{Actual yield}}{\text{Theoretical yield}}\times 100\\Yield=\frac{6.55 g}{8.53 g}\times 100=76.8\%[/tex]
The percent yield of the reaction is 76.8%.
Learn more about theoretical yield and percent yield.
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