The density of a 1.96 M solution of LiBr in acetonitrile (CH3CN) in 0.826 g/mL. Calculate the concentration of this solution in (a) molality, (b) mole fraction of LiBr, and (c) mass percent of CH3CN.
Assume the volume of the solution is 1L or 1000 mL
Mass of solution = density x Volume = 0.826 g/mL x 1000 = 826g
Moles of LiBr in the solution = Molarity x Volume (in litres)
= 1.96 x 1 = 1.9mol
Mass of LiBr in the solution = moles x molar mass
= 1.96 mol x 86.9 g/mol = 170.324 g
Mass of acetonitrile. = Total mass - mass of LiBr
= 826 - 170.324 = 655.676 g
Moles of acetonitrile = mass / molar mass = 655.676 / 41 = 15.99 mol
(a) molality = moles solute / kg solvent = 1.96/0.655676 = 3m (approx)
(b) moles fraction of LiBr = moles of LiBr / total moles
= 1.96 / ( 1.96 + 15.99 ) = 0.11
(c) mass percent of CH3CN
= (Mass of acetonitrile/total mass of solution )*100%
= (655.676 / 826)*100 = 79.4%
The density of a 1.96 M solution of LiBr in acetonitrile (CH3CN) in 0.826 g/mL. Calculate...
The density of a 2.10 M solution of LiBr in acetonitrile (CH3CN) is 0.826 g/mL. What is the molality (m) of this solution? Note: Assume 1000.0 mL of solution for your calculation. Show your work in the space below and report your answer using the correct units and significant figures.
The density of acetonitrile (CH3CN)(CH3CN) is 0.786 g/mLg/mL, and the density of methanol (CH3OH)(CH3OH) is 0.791 g/mLg/mL. A solution is made by dissolving 24.5 mLmL CH3OHCH3OH in 98.7 mLmL CH3CNCH3CN. What is the mole fraction of methanol in the solution? χCH3OHχCH3OH = What is the molality of the solution? Assuming CH3OHCH3OH is the solute and CH3CNCH3CN is the solvent. mCH3OHmCH3OH = Assuming that the volumes are additive, what is the molarity of CH3OHCH3OH in the solution? M=
Homework #1 (13) Problem 13.49 The density of acetonitrile (CHCN) is 0.786 g/mL, and the density of methanol (CH-OH) is 0.701 g/mL A solution is made by dissolving 21.5 mL CH,OH in 98.7 mL CH, CN What is the mole fraction of methanol in the solution? Undo riglo Pese keyboard shortcuts Help XCHOR Submit Previous Answers Request Answer X Incorrect: Try Again; 4 attempts remaining Part B What is the molality of the solution? Assuming CH, OH is the solute...
A 2.50 M NaCl solution has a density of 1.08 g/ml. Determine: the mass percent of NaCl the molality of the solution the mole fraction of NaCl
an aqueous solution is 4.30m lithium chloride. the density of the solution is 1.127 g/mL calculate a) molarity b) mole fraction c) percent by mass
1. An aqueous solution is 2.65M in tartaric acid (H,C,H,0). The solution's density is 1.016 g/ml. Calculate the solution's: (a) molality (b) mole fraction of tartaric acid (c) percent by mass
A 0.457 M fructose solution in water has a density of 1.03g/ml. Find the molality of the solution, and the percent by mass and mole fraction of fructose in this solution.
1a. An aqueous solution has a Molarity of 1.632 M. The density of the solution is (1.150x10^0) g/mL and the solute has a molar mass of (1.33x10^2) g/mol. What is the molality of this solution? 1b. An aqueous solution has a mass percent of solute of 18.4%. The density of the solution is (1.400x10^0) g/mL and the solute has a molar mass of (1.77x10^2) g/mol. What is the molality of this solution? 1c. An aqueous solution has a molality of...
Consider 99.5 g sucrose (C12H22011) in 300.0 mL of water. Assume 1.00 g/mL as the density of water and of sucrose. Calculate the following: 7. a. Molarity b. Molality c. Mole fraction d. Mole percent Percent by mass, as well as parts per million (ppm) and parts per billion (ppb) e. f. Percent by volume
A 2.400×10−2 M solution of NaCl in water is at 20.0∘C. The sample was created by dissolving a sample of NaCl in water and then bringing the volume up to 1.000 L. It was determined that the volume of water needed to do this was 999.4 mL . The density of water at 20.0∘C is 0.9982 g/mL. a. Calculate the molality of the salt solution. b. Calculate the mole fraction of salt in this solution. c. Calculate the concentration of...