Question

Concentrated nitric acid used in laboratory work is 68% nitric acid by mass in aqueous solution. What should be the molarity of such a sample of the acid if the density of the solution is 1.504 g mL⁻¹?

Answer 1

Let the mass of the solution = 100 g

Then the mass of nitric acid = 68 g

Molar mass of nitric acid (HNO₃) = 1 × 1 + 1 × 14 + 3 × 16 = 63 g mol⁻¹

∴ Number of moles of HNO₃ = `68/63` mol

= 1.079 mol

Density of solution = 1.504 g mL⁻¹

∴ Volume of solution = `(100  g)/(1.504  g  mL^(-1))`

= 66.5 mL

= 0.0665 L

Molarity of Solution = `"Number of moles of the solute"/"Volume of solution in L"`

= `1.079/0.0665`

= 16.23 M