0.1 millie moles of CdSO(4) are present ...

`0.1` millie moles of `CdSO_(4)` are present in `10ml` acid solution of `0.08 N HCI`. Now `H_(2)S` si passed to precipitate all the `Cd^(2+)` ions. What would be the `pH` of solution after filtering off percipitate, boilling of `H_(2)S` and making the solution `100ml` by adding `H_(2)S`?

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0.1 mili moles of CdSO_(4) are present in 10ml acid solution of 0.08 N HCI . Now H_(2)S is passed to precipitate all the Cd^(2+) ions. Find the pH of solution after filtering off percipitate, boilling of H_(2)S and making the solution 100ml by adding H_(2)O ?

0.1 millimole of CdSO_(4) are present in 10 mL acid solution of 0.08N HCI . Now H_(2)S is passed to precipitate all the Cd^(2+) ions. The pH of the solution after filtering off precipitate, boiling of H_(2)S and making the solution 100 mL by adding H_(2)O , is:

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`0.1` millie moles of `CdSO_(4)` are present in `10ml` acid solution of `0.08 N HCI`. Now `H_(2)S` si passed to precipitate all the `Cd^(2+)` ions. What would be the `pH` of solution after filtering off percipitate, boilling of `H_(2)S` and making the solution `100ml` by adding `H_(2)S`?

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