Homework SourseHelp with this The vapor pressure of water at 25 C is 238 to
Help with this.
-The vapor pressure of water at 25 °C is 23.8 torr. Determine g/mol) that must be added to 500.0 g of water to change the vapor pressure to 23 20 the mass of glucose (molar mass 180. .1 torr. A. 72 g B. 152 g C. 103 g 115 g E. 36 g Solution
Psolution = Xsolvent * P0H2O
23.1 = Xsolvent * 23.8
Xsolvent = 23.1/23.8 = 0.97
mole fraction of water Xsolvent = 0.97
n H2O/nH2O + n glucose = 0.97
no of moles of H2O (n H2O ) = W/G.M.Wt
= 500/18 = 27.8
n H2O/nH2O + n glucose = 0.97
27.8/27.8 + n glucose = 0.97
27.8 = (27.8 + n glucose)*0.97
n glucose = 0.85 moles
mass of glucose = no of moles * gram molar mass
= 0.85*180 = 152g
B. 152 >>>>answer
