Permanganometric titration of iron(II)
Titrate an acidified Fe²⁺ solution with KMnO₄: the purple oxidant is its own indicator and the titration curve shows a steep jump at equivalence.
Goal
Read the equivalence volume from the curve and compute the unknown Fe²⁺ concentration using the 1:5 stoichiometry of MnO₄⁻/Fe²⁺.
Apparatus and reagents
Burette of KMnO₄ 0.02 mol/L, flask with Fe²⁺ solution acidified by dilute H₂SO₄, white tile, magnetic stirrer.
Procedure
- Set the analyte type to the strong-acid option (acid = 0) and the Fe²⁺ concentration C.
- Sweep the added volume Vb from 0 to 50 mL and locate the steepest part of the curve.
- At the first permanent pale pink, record Vb: this is the equivalence volume Ve.
- Compute c(Fe²⁺) = 5 · c(KMnO₄) · Ve / V(sample) and compare with the value set in the widget.
What to observe
- Before equivalence each drop of MnO₄⁻ is instantly decolourised by Fe²⁺; just after equivalence the excess MnO₄⁻ persists as a pale pink tint.
- The curve stays almost flat then jumps steeply near the equivalence volume, mirroring the abrupt potential jump at the endpoint.
Explanation
In acid solution : one mole of permanganate consumes five moles of Fe²⁺. Because is intensely violet while all products are nearly colourless, no external indicator is needed — the first persistent pink drop signals equivalence (self-indicating titrant).
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