The pH an aqueous solution of `Ba(OH)_(2)` is `10.0`. If the `K_(sp)` of `Ba(OH)_(2)` is `1.0xx10^(-9)`, the concetration of `Ba^(2+)` ions in the solution isA. `1.0xx10^(-5)M`B. `1.0xx10^(-1)M`C. `1.0xx10^(-4)M`D. `1.0xx10^(-2)M`

The pH an aqueous solution of `Ba(OH)_(2)` is `10.0`. If the `K_(sp)`

1.	The pH an aqueous solution of `Ba(OH)_(2)` is `10.0`. If the `K_(sp)` of `Ba(OH)_(2)` is `1.0xx10^(-9)`, the concetration of `Ba^(2+)` ions in the solution isA. `1.0xx10^(-5)M`B. `1.0xx10^(-1)M`C. `1.0xx10^(-4)M`D. `1.0xx10^(-2)M`
Answer» Correct Answer - B Unless otherwise stated, the solvent is water and the temperature is `25^(@)C`. `Ba(OH)_(2)(s)hArrBa^(2+)(aq.)+2OH^(-)(aq.)` `pH=10.0` Since `pH+pOH=14.0(at 298 K)` `pOH= 14.0-10.0` `= 4.0` `:. C_(OH^(-))= 10^(-4)mol L^(-1)` According to solubility equilibrium, `K_(sp)=C_(Mg^(2+))C_(OH^(-))^(2)` `1.0xx10^(-9)=C_(Mg^(2+))(10^(-4))^(2)` `C_(Mg^(2+))=(1.0xx10^(-9))/(10^(-8))` `= 1.0xx10^(-1)M`

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The pH an aqueous solution of `Ba(OH)_(2)` is `10.0`. If the `K_(sp)` of `Ba(OH)_(2)` is `1.0xx10^(-9)`, the concetration of `Ba^(2+)` ions in the solution isA. `1.0xx10^(-5)M`B. `1.0xx10^(-1)M`C. `1.0xx10^(-4)M`D. `1.0xx10^(-2)M`

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