Chemistry · General chemistry II · Worked example
Titrate sulfuric acid, a diprotic acid
A 20.00 mL sample of sulfuric acid is titrated with 0.1250 M NaOH, and the equivalence point is reached after 31.84 mL. Find the concentration of the acid.
Balance the equation
Each H₂SO₄ gives up two protons, so it takes two NaOH.
Moles of base
Volume in liters times molarity.
Moles of acid
The equation gives 1 mol of H₂SO₄ for every 2 mol of NaOH, so the acid is half the base.
Concentration
Divide by the acid’s volume in liters.
Why M₁V₁ = M₂V₂ fails here
Treating the reaction as 1 : 1 would give 0.1990 M, twice the true value. The shortcut hides the mole ratio, so use it only when the ratio is 1 : 1.
Result
The sulfuric acid is 0.09950 M.
Your turn
What volume of 0.200 M HCl neutralizes 25.0 mL of 0.150 M Ba(OH)₂?
Show the answer and explanation
37.5 mL.
Ba(OH)₂ + 2HCl → BaCl₂ + 2H₂O. The base is (0.0250 L)(0.150 mol/L) = 3.75 × 10⁻³ mol, so the acid is 7.50 × 10⁻³ mol, and 7.50 × 10⁻³ mol ÷ 0.200 mol/L = 0.0375 L.
Keep exploring
Stoichiometry & yield opens with 31.84 mL of 0.1250 M NaOH and the acid in excess. It shows 3.980 × 10⁻³ mol of base consuming 1.990 × 10⁻³ mol of H₂SO₄.
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