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In this experiment, a standard iodine solution is generated in situ by reacting potassium iodate () with potassium iodide (KI) in acidic conditions.
Measurement | Value |
---|---|
Rough titre | 22.8 cm³ |
Second titre | 22.4 cm³ |
Third titre | 22.5 cm³ |
Average of accurate titres | 22.45 cm³ |
Volume of iodine solution used | 25.0 cm³ |
Concentration of iodine solution | 0.06 M |
Using the balanced equation:
Moles of used:
From the equation, 2 moles of react with 1 mole of .
Moles of sodium thiosulfate reacting:
Concentration of sodium thiosulfate:
Sodium thiosulfate is efflorescent and its water content can vary, making it unsuitable as a primary standard.
Starch forms a blue-black complex with iodine, providing a sharp colour change from blue-black to colourless near the endpoint.
Adding starch too early can cause a slow or unclear endpoint.
At the endpoint, all the iodine has reacted, and the blue-black colour turns colourless, indicating that no iodine remains in the solution.
Potassium iodide keeps iodine in solution as I₃⁻ ions, which are more soluble than I₂ in water.
Starch solution deteriorates quickly and can give false endpoints if not freshly prepared.
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