Question

A solution of `H_2SO_4(aq)` with a molal concentration of 3.58 m has a density of 1.200 g/mL. What is the molar concentration of this solution?

Answer 1

`"3.18 M"`

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Knowing the molal concentration, here is what you know... by assuming `"1 kg"` of aqueous solvent, we have:

• `"3.58 mols H"_2"SO"_4`

• `"1 kg water"`

By using the density of the solution, along with the mass of the solution, we can get the volume of the solution. Then, by definition, the molarity is `"mols solute"/"L solution"`.

`m_(soln) = 3.58 cancel("mols H"_2"SO"_4) xx ("98.079 g H"_2"SO"_4)/cancel("1 mol H"_2"SO"_4) + cancel"1 kg water" xx "1000 g"/cancel"1 kg"`

`= 1.35_(112282) xx 10^(3) "g soln"`

Therefore, its volume is:

`1.35_(112282) xx 10^(3) cancel"g soln" xx cancel"1 mL soln"/(1.200 cancel"g soln") xx "1 L soln"/(1000 cancel"mL soln")`

`= 1.12_(5935683)` `"L soln"`

Therefore, its molar concentration is:

`("3.58 mols H"_2"SO"_4)/(1.12_(5935683) "L soln")`

`=` `color(blue)("3.18 M")`