An aqueous solution is 27 % LiCl by mass. Given the density of the solution, molality, mole fraction and molarity of NH 4 Cl in solution has to be determined. Concept Introduction: Molality is one of the many parameters that is used to express concentration of a solution . It is expressed as, Molality = n u m b e r of m o l e s o f solute m a s s of solvent in kg Molarity is one of the many parameters that is used to express concentration of a solution . It is expressed as, Molarity = n u m b e r of m o l e s o f solute v o l u m e of solution in L A solution is at least made up of two components. Mole fraction of a component in the solution correlates to the ratio of number of moles of that component to the total number of moles. It is expressed as, Mole fraction = n u m b e r of moles of a component t o t a l number of moles in the solution Mass percent is one of the many parameters that is used to express concentration of a solution . It is expressed as, Mass percent = m a s s of solute m a s s of solution × 100%
An aqueous solution is 27 % LiCl by mass. Given the density of the solution, molality, mole fraction and molarity of NH 4 Cl in solution has to be determined. Concept Introduction: Molality is one of the many parameters that is used to express concentration of a solution . It is expressed as, Molality = n u m b e r of m o l e s o f solute m a s s of solvent in kg Molarity is one of the many parameters that is used to express concentration of a solution . It is expressed as, Molarity = n u m b e r of m o l e s o f solute v o l u m e of solution in L A solution is at least made up of two components. Mole fraction of a component in the solution correlates to the ratio of number of moles of that component to the total number of moles. It is expressed as, Mole fraction = n u m b e r of moles of a component t o t a l number of moles in the solution Mass percent is one of the many parameters that is used to express concentration of a solution . It is expressed as, Mass percent = m a s s of solute m a s s of solution × 100%
Author: Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
An aqueous solution is 27 %LiCl by mass. Given the density of the solution, molality, mole fraction and molarity of NH4Cl in solution has to be determined.
Concept Introduction:
Molality is one of the many parameters that is used to express concentration of a solution. It is expressed as,
Molality = number of molesof solutemass of solvent in kg
Molarity is one of the many parameters that is used to express concentration of a solution. It is expressed as,
Molarity = number of molesof solutevolume of solution in L
A solution is at least made up of two components. Mole fraction of a component in the solution correlates to the ratio of number of moles of that component to the total number of moles. It is expressed as,
Mole fraction = number of moles of a componenttotal number of moles in the solution
Mass percent is one of the many parameters that is used to express concentration of a solution. It is expressed as,
Mass percent = mass of solutemass of solution× 100%
Expert Solution & Answer
Answer to Problem 12.90QP
Molality of 27% LiCl is determined as 8.72m.
Mole fraction of LiCl in 27% LiCl is determined as 0.136.
Molarity of 27% LiCl is determined as 7.2M.
Explanation of Solution
Assume that volume of solution is 1.000 L which is equivalent to 1.127 kg as density of solution is 1.127 g/mL. Then mass of LiCl used to prepare 27% LiCl solution is,
Mass percent of LiCl = mass of LiClmass of solution× 100%
Rearranging the above expression,
mass of LiCl = Mass percent × mass of solution
Substitute the known values,
mass of LiCl = 27%× 1.127 kg = 0.3043 kg= 304.3 g LiCl
As we know,
Mass of solution = mass of solute + mass of solvent = mass of LiCl + mass of water
Mass of the solute, LiCl is calculated above. Therefore,
1.127 kg of solution = 0.3043 kg of LiCl + mass of watermass of water = 1.127 kg - 0.3043 kg = 0.8227 kg
Number of moles of LiCl and water are calculated as,
no.of moles of LiCl= mass of LiClmolar mass of LiCl=304.3 g42.39 g/mol = 7.178 molNo.of moles of water= mass of H2Omolar mass of H2O=822.7 g18.02 g/mol = 45.67 mol
Totalnumberofmolesinsolution,= no.of moles of LiCl + no.of moles of H2O= 7.178 mol + 45.67 mol= 52.845 mol
Molality of the solution is calculated as,
Molality of LiCl= number of molesof LiClmass of H2O in kg=7.178 mol0.8227 kg= 8.7249 m ≈8.72 m
Molarity of the solution is calculated as,
Molarity of LiCl= number of moles LiClvolume of solution in L=7.178 mol1.000 L= 7.178 M = 7.2 M
Mole fraction of Lithium chloride is calculated as,
Mole fraction of LiCl= number of moles LiCltotal number of moles in solution=7.178 mol52.845 mol= 0.1358 = 0.136
Conclusion
Given the density of aqueous solution of 27 %LiCl, the molality, mole fraction and molarity of LiCl in solution are determined by calculating the number of moles of LiCl in solution.
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