A solution is made by dissolving 0.585 mol of nonelectrolyte solute in 877 g of benzene....
A solution is made by dissolving 0.585 mol of nonelectrolyte solute in 877 g of benzene. Calculate the freezing point, Tf, and boiling point, Tb, of the solution. Constants can be found in the table of colligative constants.
Constants for freezing-point depression and boiling-point
elevation calculations at 1 atm:
| Solvent | Formula | Kf value*
(°C/m) |
Normal freezing point (°C) |
Kb value
(°C/m) |
Normal boiling point (°C) |
| water | H2O | 1.86 | 0.00 | 0.512 | 100.00 |
| benzene | C6H6 | 5.12 | 5.49 | 2.53 | 80.1 |
| cyclohexane | C6H12 | 20.8 | 6.59 | 2.92 | 80.7 |
| ethanol | C2H6O | 1.99 | –117.3 | 1.22 | 78.4 |
| carbon tetrachloride |
CCl4 | 29.8 | –22.9 | 5.03 | 76.8 |
| camphor | C10H16O | 37.8 | 176 |
*When using positive Kf values, assume that
ΔTf is the absolute value of the
change in temperature. If you would prefer to define
ΔTf as "final minus initial" temperature, then
ΔTf will be negative and so you must use
negative Kf values. Either way, the freezing
point of the solution should be lower than that of the pure
solvent.
Tf= ∘C
Tb= ∘C
Homework Answers
Tf
= 2.075°CAdd Answer to:
A solution is made by dissolving 0.585 mol of nonelectrolyte
solute in 877 g of benzene....
A solution is made by dissolving 0.749 mol of nonelectrolyte solute in 861 g of benzene....
A solution is made by dissolving 0.749 mol of nonelectrolyte solute in 861 g of benzene. Calculate the freezing point, Tf, and boiling point, Tb, of the solution. Constants may be found here. Solvent Formula Kf value* (°C/m) Normal freezing point (°C) Kb value (°C/m) Normal boiling point (°C) water H2O 1.86 0.00 0.512 100.00 benzene C6H6 5.12 5.49 2.53 80.1 cyclohexane C6H12 20.8 6.59 2.92 80.7 ethanol C2H6O 1.99 –117.3 1.22 78.4 carbon tetrachloride CCl4 29.8 –22.9 5.03 76.8...
A solution is made by dissolving 0.592 mol of nonelectrolyte solute in 767 g of benzene....
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Assuming 100% dissociation, calculate the freezing point and boiling point of 2.11 m Na2SO4(aq). Constants may...
Assuming 100% dissociation, calculate the freezing point and boiling point of 2.11 m Na2SO4(aq). Constants may be found here. Solvent Formula Kf value* (°C/m) Normal freezing point (°C) Kb value (°C/m) Normal boiling point (°C) water H2O 1.86 0.00 0.512 100.00 benzene C6H6 5.12 5.49 2.53 80.1 cyclohexane C6H12 20.8 6.59 2.92 80.7 ethanol C2H6O 1.99 –117.3 1.22 78.4 carbon tetrachloride CCl4 29.8 –22.9 5.03 76.8 camphor C10H16O 37.8 176
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Calculate the freezing point of a 11.50 m aqueous solution of propanol. Freezing point constants can be found in the list of colligative constants. Colligative Constants Constants for freezing point depression and boiling point elevation calculations at 1 atm: Solvent Formula Kvalue" Normal freezing ky value Normal bolling (°C/m) point (°C) (°C/m) point (°C) H20 1.86 0.00 0.512 100.00 CGHS 5.12 5.49 CH12 20.8 6.59 CyH60 1.99 -117.3 calu 29.8 -22.9 76.8 water benzene cyclohexane ethanol carbon tetrachloride camphor 2.53...
A solution is made by dissolving 0.539 mol of nonelectrolyte solute in 775 g of benzene....
A solution is made by dissolving 0.539 mol of nonelectrolyte solute in 775 g of benzene. Calculate the freezing point, Tf, and boiling point, Tb, of the solution.
A solution is made by dissolving 0.592 mol of nonelectrolyte solute in 767 g of benzene. Calculate the freezing point, Te, and boiling point, Tb, of the solution. Constants can be found in the table of colligative constants. T = Colligative Constants Constants for freezing-point depression and boiling-point elevation calculations at 1 atm: Solvent Formula Kf value* Normal freezing Kb value Normal boiling (°C/m) point (°C) (°C/m) point (°C) water H20 1.86 0.00 0.512 100.00 benzene 5.12 5.49 2.53 80.1...
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