Question

Please Help - Molality?

A 15.7 g sample of anhydrous sodium sulfate, Na2SO4, is dissolved in 4.93 L of water. The molar mass of sodium sulfate is 142.1 g/mol. Use the equation given to calculate the molality (m) of the solution, in mol/kg.

For this situation, assume the density of water is 1.00 g/mL.

m = moles of solute
mass of solvent (kg)

0.200 mol/kg (Incorrect: This answer was incorrect.)

Answer 1

`"molality"=0.0224*mol*kg^-1`....

Explanation:

We want the quotient.....

`"molality"="moles of solute"/"kilograms of solvent"...`

And so...`m_"sodium sulfuate"=((15.7*g)/(142.04*g*mol^-1))/(4.93*Lxx1*kg*L^-1)`

`~=0.02*mol*kg^-1...`...so you were out by an order of magnitude...no big deal....

Answer 2

Please, kindly see the step process below;

Explanation:

Recall: `rArr"molality" = "moles of solute"/"kilogram of solvent"`

`"moles of solute" = "mass"/"molar mass"`

`"density" = "mass"/"volume"`

Making mass the subject..

`"mass" = "density" xx "volume"`

Parameters

`"mass" = 15.7g`

`"molar mass" = 142.1gmol^-1`

But; `rArr "moles of solute" = "mass"/"molar mass"`

`"moles of solute" = (15.7cancelg)/(142.1cancelgmol^-1)= 0.111mols`

`"density" = (1.00g)/(mL) = (1.00kg)/L = 1.00kgL^-1` (since molality answers are always in `molkg^-1`)

Well for conversion rate?

`1000g = 1kg`

`1000mL = L`

Hence;

`(1000g)/(1000mL) = (1kg)/(1L) = 1kgL^-1` (that's how we got this)

`"volume" = 4.93L`

Hence;

`"mass" = d xx v = 1.00kgcancelL^-1 xx 4.93cancelL = 4.93kg`

Now...

`"molality" = "moles of solute"/"kilogram of solvent"`

`"molality" = (0.111mols)/(4.93kg) = 0.225molskg^-1`