Respuesta :
Answer: The percent yield of the 1-bromobutane is 48.65 %
Explanation:
To calculate the number of moles, we use the equation:
[tex]\text{Number of moles}=\frac{\text{Given mass}}{\text{Molar mass}}[/tex] .....(1)
- For NaBr:
Given mass of NaBr = 11.1 g
Molar mass of NaBr = 103 g/mol
Putting values in equation 1, we get:
[tex]\text{Moles of NaBr}=\frac{11.1g}{103g/mol}=0.108mol[/tex]
The chemical equation for the reaction of 1-butanol and NaBr is:
[tex]\text{1-butanol + NaBr}\rightarrow \text{1-bromobutane}[/tex]
By Stoichiometry of the reaction
1 mole of NaBr produces 1 mole of 1-bromobutane
So, 0.108 moles of NaBr will produce = [tex]\frac{1}{1}\times 0.108=0.108[/tex] moles of 1-bromobutane
- Now, calculating the mass of 1-bromobutane from equation 1, we get:
Molar mass of 1-bromobutane = 137 g/mol
Moles of 1-bromobutane = 0.108 moles
Putting values in equation 1, we get:
[tex]0.108mol=\frac{\text{Mass of 1-bromobutane}}{137g/mol}\\\\\text{Mass of 1-bromobutane}=(0.108mol\times 137g/mol)=14.80g[/tex]
- To calculate the percentage yield of 1-bromobutane, we use the equation:
[tex]\%\text{ yield}=\frac{\text{Experimental yield}}{\text{Theoretical yield}}\times 100[/tex]
Experimental yield of 1-bromobutane = 7.2 g
Theoretical yield of 1-bromobutane = 14.80 g
Putting values in above equation, we get:
[tex]\%\text{ yield of 1-bromobutane}=\frac{7.2g}{14.80g}\times 100\\\\\% \text{yield of 1-bromobutane}=48.65\%[/tex]
Hence, the percent yield of the 1-bromobutane is 48.65 %
