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प्रश्न
Equal volumes of 0.002 M solutions of sodium iodate and cupric chlorate are mixed together. Will it lead to precipitation of copper iodate? (For cupric iodate Ksp = 7.4 × 10–8).
उत्तर
When equal volumes of sodium iodate and cupric chlorate solutions are mixed together, then the molar concentrations of both solutions are reduced to half i.e., 0.001 M.
Then,
\[\ce{\underset{0.001 M}{{Na10}_3} -> Na+ + \underset{0.001 M}{10^-_3}}\]
\[\ce{\underset{0.001 M}{Cu(ClO3)2} -> Cu^{2+} + \underset{0.001 M}{2ClO^-_3}}\]
Now, the solubility equilibrium for copper iodate can be written as:
\[\ce{Cu(10_3)_2 -> Cu^{2+}_{(aq)} + 210^-_{3(aq)}}\]
Ionic product of copper iodate:
`= ["Cu"^(2+)][10_3^-]^2`
`= (0.001)(0.001)^2`
`= 1xx 10^(-9)`
Since the ionic product (1 × 10–9) is less than Ksp (7.4 × 10–8), precipitation will not occur.
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