10 g of glucose (mm=180.2g/mol) is dissolved in 70 mL of H2O at 25 degrees. 1....
Calculate the vapor pressure depression of a solution that 218 gram glucose (180.2 g/mol) is dissolved in 460 mL of water (18.01 g/mol). The temperature of the solution is 30°C. Assume the density of solution and water as 1.00 g/mL, the vapor pressure of pure water at 30°C 31.82 mm Hg.
How many grams of glucose must be dissolved in 300.0 ml of water at 25 degrees celsius to give an osmotic pressure of 9.05atm
Calculate the mass of p-dichlorobenzene (mm=147.00 g/mol) that when dissolved in 125 ml cyclohexane (d=0.779 g/mol, mm=84.16 g/mol) creates a solution with a boiling point of 81 degrees celcius. the kf of cyclohexane is 2.75 c/mol.
The vapor pressure of water (H2O) is 23.8 mm Hg at 25 °C. What is the vapor pressure of a solution consisting of 203 g of water and 0.213 mol of a nonvolatile nonelectrolyte? VP(solution) = mm Hg
The vapor pressure of water is 23.76 mm Hg at 25 °C. A nonvolatile, nonelectrolyte that dissolves in water is urea. Calculate the vapor pressure of the solution at 25 °C when 6.846 grams of urea, CH4N2O (60.10 g/mol), are dissolved in 207.3 grams of water. water = H2O = 18.02 g/mol. VP(solution) = mm Hg
A solution of 1.65 g of solute dissolved in 25.0 mL of H2O at 25°C has a boiling point of 100.350°C. What is the molar mass of the solute if it is a nonvolatile nonelectrolyte and the solution behaves ideally (d of H2O at 25°C = 0.997 g/mL)?
A solution of 1.65 g of solute dissolved in 25.0 mL of H2O at 25°C has a boiling point of 100.550°C. What is the molar mass of the solute if it is a nonvolatile nonelectrolyte and the solution behaves ideally (d of H2O at 25°C = 0.997 g/mL)?
If 50.0 g of CH3OH (MM = 32.04 g/mol) are dissolved in 500.0 mL of solvent, what is the concentration of CH3OH in the resulting solution? How many moles of CH3OH are there in 50.0 mL of 0.400 M CH3OH? How many mL of 0.300 M NaCI solution are required to produce 0.150 moles of NaCI?
An aqueous solution containing glucose has a vapor pressure of 17.1 torr at 25 degrees C. What would be the vapor pressure of this solution at 45 degrees C? The vapor pressure of pure water is 23.8 torr at 25 degrees C and 71.9 torr at 45 degrees C. If the glucose in the solution were substituted with an equivalent amount (moles) of NaCl what would be the vapor pressure at 45 degrees C?
10.00 grams of KH2PO4 (FW = 136.086 g/mol) are dissolved in 500 mL of deionized H2O. How many grams Na2HPO4 (FW = 141.96 g/mol) need to be dissolved to create a solution with a pH of 6.90? For H3PO4, pKa1 = 2.15 , pKa2 = 7.20, and pKa3 = 12.37.