Answer:
[tex] 20.3125[/tex] kJ/mol
Explanation:
[tex]P_{i}[/tex] = initial vapor pressure = 45.77 mm Hg
[tex]P_{f}[/tex] = final vapor pressure = 193.1 mm Hg
[tex]T_{i}[/tex] = initial temperature = 213.1 K
[tex]T_{f}[/tex] = final temperature = 243.7 K
[tex]H[/tex] = Heat of vaporization
Using the equation
[tex]ln\left ( \frac{P_{f}}{P_{i}} \right ) = \left ( \frac{-H}{R} \right )\left ( \frac{1}{T_{f}} - \frac{1}{T_{i}}\right)[/tex]
[tex]ln\left ( \frac{193.1}{45.77} \right ) = \left ( \frac{-H}{8.314} \right )\left ( \frac{1}{243.7} - \frac{1}{213.1}\right)[/tex]
[tex]H = 20312.5[/tex] J/mol
[tex]H = 20.3125[/tex] kJ/mol
