The `pH` of `0.005 M` codenine `(C_(18)H_(21)NO_(3))` solution is `9.95`. Calculate its ionisation constant and `pK_(b)`.

The `pH` of `0.005 M` codenine `(C_(18)H_(21)NO_(3))` solution is `9.9

1.	The `pH` of `0.005 M` codenine `(C_(18)H_(21)NO_(3))` solution is `9.95`. Calculate its ionisation constant and `pK_(b)`.
Answer» Correct Answer - `K_(b) = 1.6 xx 10^(-6), pK_(b) = 5.8` `c = 0.005` `pH = 9.95` `pOH = 4.05` `pH = – log (4.105)` `4.05 = -"log" [OH^(-)]` `[OH^(-)] = 8.91 xx 10^(-5)` `calpha = 8.91 xx 10^(-5)` `alpha = (8.91 xx 10^(-5))/(5 xx 10^(-3)) = 1.782 xx 10^(-2)` Thus, `K_(b) = calpha^(2)` `= 0.005 xx (1.782)^(2) xx 10^(-4)` `= 0.005 xx 3.1755 xx 10^(-4)` `= 0.0158 xx 10^(-4)` `K_(b) = 1.58 xx 10^(-6)` ltbr gt `Pk_(b) = - "log" K_(b)` `= -"log"(1.58 xx 10^(-6))` `= 5.80`

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The `pH` of `0.005 M` codenine `(C_(18)H_(21)NO_(3))` solution is `9.95`. Calculate its ionisation constant and `pK_(b)`.

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