Class 12 Chemistry Practical
How to do salt analysis · Viva · Quiz
To analyse the given inorganic salt for one acidic and one basic radical.
| Experiment | Observation | Inference |
|---|---|---|
| Physical examination | White solid; odourless | Not acetate |
| Solubility | Sparingly soluble in cold water; soluble in hot water | Characteristic of PbCl₂ |
| Dry heating | May melt; no sublimate of NH₄Cl; no brown NO₂ | Not ammonium chloride / lead nitrate |
| Dilute H₂SO₄ | White ppt of PbSO₄ may form; no CO₂ | Not carbonate |
| Conc. H₂SO₄ | HCl gas (from chloride) on heating | Cl⁻ may be present |
| Flame test | No apple-green / brick-red | Not Ba / Ca |
| Experiment | Observation | Inference |
|---|---|---|
| Heat a pinch of salt with conc. H₂SO₄ | Colourless gas with a pungent smell; dense white fumes with NH₄OH | Cl⁻ may be present |
| Confirmatory Tests | ||
| MnO₂ / conc. H₂SO₄ Heat the salt with conc. H₂SO₄ and a pinch of MnO₂ | Greenish-yellow chlorine gas is evolved | Cl⁻ is indicated |
| Silver nitrate Acidify the soda extract with dilute HNO₃ and add AgNO₃, then NH₄OH | Curdy white ppt of AgCl, soluble in NH₄OH, reappears with dilute HNO₃ | Cl⁻ is confirmed |
| Chromyl chloride Heat salt + K₂Cr₂O₇ + conc. H₂SO₄. Pass vapours into NaOH; acidify with acetic acid and add lead acetate | Yellow chromyl chloride vapours; yellow ppt of PbCrO₄ | Cl⁻ is confirmed (chromyl chloride test) |
| Experiment | Observation | Inference |
|---|---|---|
| To the original solution add dilute HCl | White ppt of PbCl₂, soluble in hot water, reappears on cooling | Group I (Pb²⁺) may be present |
| Confirmatory Tests | ||
| Potassium iodide To the hot solution of the ppt add KI | Yellow ppt of PbI₂ (golden spangles on cooling) | Pb²⁺ is confirmed |
| Potassium chromate To the acidified solution add K₂CrO₄ | Yellow ppt of PbCrO₄, insoluble in acetic acid | Pb²⁺ is confirmed |
The given salt contains Pb²⁺ as the cation (basic radical) and Cl⁻ as the anion (acidic radical). The salt is Lead Chloride (PbCl₂).
Why dissolve in hot water?
Solubility of PbCl₂ rises sharply with temperature.
Why golden spangles with KI?
PbI₂ crystallises as shining yellow plates.
Why chromyl chloride can still work?
The salt contains chloride.
How is this different from NH₄Cl?
No ammoniacal smell, no sublimation, Group I lead tests instead of Nessler.
Why might original solution be made in hot water?
Cold water does not dissolve enough PbCl₂.
Why yellow with chromate?
PbCrO₄.
Why not Group II after this?
Lead is already confirmed in Group I (though Pb²⁺ can also ppt as PbS later if missed).
Is the formula Pb(Cl)₂?
No. Write PbCl₂.