Answer:
The vapor pressure of the solution is 84.9 torr
Explanation:
Biphenyl is a nonvolatile, nonionizing solute
Temperature = 25.0 °C
Vapor pressure = 100.84 torr
Mass of biphenyl = 10.3 grams
Mass of benzene = 27.8 grams
Molar mass biphenyl = 154.21 g/mol
Molar mass benzene = 78.11 g/mol
Step 2: Calculate moles
Moles = mass / molar mass
Moles biphenyl = 10.3 grams / 154.21 g/mol
Moles biphenyl = 0.0668 moles
Moles benzene = 27.8 grams / 78.11 g/mol
Moles benzene = 0.356 moles
Step 3: Calculate total moles
Total moles = 0.0668 moles + 0.356 moles
Total moles= 0.4228 moles
Step 4: Calculate mol fraction benzene
Mol fraction benzene = moles benzene / total moles
Mol fraction benzene = 0.356 moles / 0.4228 moles
Mol fraction benzene = 0.842
Step 5: Calculate vapor pressure of the solution
Psol = Xbenzene * P°benzene
⇒Psol = the vapor pressure of the solution
⇒Xbenzene = mol fraction of benzene
⇒P°benzene = the vapor pressure of pure benzene
Psol = 0.842 * 100.84 torr
Psol = 84.9 torr
The vapor pressure of the solution is 84.9 torr