Q.In an electrical field, the particles of a Colloidal system move towards cathode. The coagulation of the same sol is studied using
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Start your 14-day free trial to unlock the full solution →Since the colloidal particles move to the cathode, the sol is positively charged, so coagulation requires oppositely-charged (anionic) electrolytes; the Hardy–Schulze rule states coagulating power increases sharply with the valency of the effective (oppositely-charged) ion, ranking highest and lowest.
Step 1 — identify the charge on the sol: in electrophoresis, colloidal particles migrate towards the electrode of opposite charge. Since the particles move towards the cathode (the negative electrode), the particles themselves must be positively charged.
Step 2 — identify the effective coagulating ion: for a positively charged sol, coagulation is caused by the anion of the added electrolyte (the ion of charge opposite to the sol).
Step 3 — apply the Hardy–Schulze rule: the coagulating power of an ion increases sharply (not linearly) with its valency/charge. Identifying the anion and its charge in each electrolyte:
- (i) → (charge )
- (ii) → (charge ) …
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