Problem1. 2.00 g of some unknown compound reduces the freezing point of 75.00 g of benzene from 5.53 to 4.90 ∘C∘C. What is the molar mass of the compound?
Problem1. 2.00 g of some unknown compound reduces the freezing point of 75.00 g of benzene...
The molar mass of unknown molecular compound is determined using freezing point depression. The substance is dissolved in benzene (C6H), an organic solvent. Use the data below to determine the molar mass of the substance. 8.65 g Mass of unknown compound Freezing point of solution Volume of benzene -10.21°C 35.0 mL 5.53°C Freezing point of benzene Density of benzene Kf for benzene 0.8765 g/mL 5.12°C/m Molar mass = g/mol
When 12.6-grams of an unknown compound is placed in 0.116-kg of benzene, the freezing point is changed by 2.34°C. The value of Kf= 4.90°C/m for benzene. Determine the molar mass of the unknown compound. Answer to 1 decimal place and include your units. Answer: Determine the molality of a solution when 32.3 grams of ethanol, C2H5OH (Molar mass = 46.08 g/mol) is dissolved in 0.947 kg of water. Answer to 2 decimal places. Answer: Find the freezing point of a...
A solution made by dissolving 150.0 g of an unknown compound in 425.0 mL of benzene to make a solution which has a freezing point 18.6 °C lower than that of pure benzene. Kf for benzene is 5.12 °C/m and the density of benzene is 0.877 g/mL. b) The molality of the solution is 3.63. How many moles of the unknown compound were dissolved in the solution? C) what is the molar mass of the unknown compound?
The freezing point of a solution that contains 1.00 g of an unknown compound, (A), dissolved in 10.0 g of benzene is found to be 2.17 oC. The freezing point of pure benzene is 5.48 oC. The molal freezing point depression constant of benzene is 5.12 oC/molal. What is the molecular weight of the unknown compound?
Eicosene is a molecular compound and nonelectrolyte with the empirical formula CH2. The freezing point of a solution prepared by dissolving 100mg of eicosene in 1.00g Benzene was 1.75 degrees C lower than the freezing point of pure benzene. What is the molar mass of eicosene if Kf for benzene is 4.90 Degrees C/m?
A 5.11 g sample of a compound is dissolved in 154.7 g of benzene. The freezing point of this solution is 1.00°C below that of pure benzene. The compound is a nonelectrolyte. What is the molar mass of this compound? K for benzene = 5.12(°C kg)/mol. (Do not include units in your answer. If you round during your calculations make sure to keep at least 3 decimal places. Report your answer to the nearest whole number.) AT=i Kh Msolute AT...
What is the molar mass of 0.85 g of an unknown, non-electrolyte, compound that depresses the freezing point of 100. g of benzene by 0.47°C? Kf of benzene is 5.12ºC/m.
The freezing point of a solution of 1.104 g of an unknown nonelectrolyte dissolved in 36.81 g of benzene is 1.08°C. Pure benzene freezes at 5.48°C and its Kf value is 5.12°C/m. What is the molecular weight of the compound?
The molar mass of an unknown solid compound was determined by
measuring the freezing point depression of 1.50 grams of the
unknown in 20.00 grams of phenol.
a.) do not need the cooling curve.
b.) please show calculations
3. The molar mass of an unknown solid compound was determined by measuring the freezing poist depression of 1.50 grams of the unknowm in 20.00 grams of Phenol Phenol &Unknown nutes)Temperature 12.5 8.6 1.0 8.2 1.5 6.9 7.8 7.7 .0 75 4.0...
The freezing point of benzene is 5.5 °C. What is the molar mass of a nonionizing solute if 1.06 grams of the solute added to 24.83 g of benzene lowers the freezing point to 3.97. The Kf of benzene is -5.12 °C/m. Record your answer as a whole number.