`pH` of an aqueous solution of `0.6M NH_(3)` and `0.4M NH_(4)CI` is `9.4 (pK_(b) = 4.74)`. The new `pH` when `0.1M Ca(OH)_(2)` solution is added to it.A. `9.86`B. `10.14`C. `10.2`D. `10.86`

`pH` of an aqueous solution of `0.6M NH_(3)` and `0.4M NH_(4)CI` is `9

1.	`pH` of an aqueous solution of `0.6M NH_(3)` and `0.4M NH_(4)CI` is `9.4 (pK_(b) = 4.74)`. The new `pH` when `0.1M Ca(OH)_(2)` solution is added to it.A. `9.86`B. `10.14`C. `10.2`D. `10.86`
Answer» Correct Answer - A Since `Ca(OH)_(2)` is completely ionised. `{:(,Ca(OH)_(2)rarr,Ca^(2+)+,2overset(Theta)OH,),("Initla",0.1,0,0,),("Final",c,0,2xx0.1=0.1M,):}` BBB Rule: On adding base, to the basic buffer, concentration of base increases and salt decreases. `:.` New concentration of base and salt are: `["Base"] = [NH_(3)] = 0.6 xx 0.2 = 0.8M` `["Salt"] = [NH_(4)CI] = 0.4 - 0.2 = 0.2M` `:. pOH = pK_(b) + log [("Salt")/("Base")]` `pOH = 4.74 + log ((0.2)/(0.8))` `= 4.74 - 2 log2 = 4.74 - 2 xx 0.30 = 4.14` `pH = 14- 4.14 = 9.86`

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`pH` of an aqueous solution of `0.6M NH_(3)` and `0.4M NH_(4)CI` is `9.4 (pK_(b) = 4.74)`. The new `pH` when `0.1M Ca(OH)_(2)` solution is added to it.A. `9.86`B. `10.14`C. `10.2`D. `10.86`

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