Calculate the pH of a given mixtures. (a) `(4g CH_(3)COOH+6g CH_(3)COONa)` in 100 mL of mixture, (`K_(a)` for `CH_(3)COOH=1.8xx10^(-5))` (b) 5 mL of `0.1MBOH+250` mL of `0.1 MBCI`, (`K_(a)` for `MOH=1.8xx10^(-5))` (c ) (`0.25` mole of `CH_(3)COOH+0.35` mole of `CH_(3COOH=3.6xx10^(-4))`

Calculate the pH of a given mixtures. (a) `(4g CH_(3)COOH+6g CH_(3)COO

1.	Calculate the pH of a given mixtures. (a) `(4g CH_(3)COOH+6g CH_(3)COONa)` in 100 mL of mixture, (`K_(a)` for `CH_(3)COOH=1.8xx10^(-5))` (b) 5 mL of `0.1MBOH+250` mL of `0.1 MBCI`, (`K_(a)` for `MOH=1.8xx10^(-5))` (c ) (`0.25` mole of `CH_(3)COOH+0.35` mole of `CH_(3COOH=3.6xx10^(-4))`
Answer» (a) We have pH= -log `K_(a)+log (["Salt"])/(["Acid"])` `:. ["Salt"]= (6xx1000)/(82xx100)M` and `["Acid"]=(4xx1000)/(60xx100)M` `:. pH= -log 1.8xx10^(5)+log(6xx1000//82xx100)/(4xx1000//60xx100)` `:. pH= 4.7851` (b) `pOH= -log K_(b)+log ((["Salt"])/(["Base"]))` `.: "Total volume after mixing"=250+5=255mL` Meq.of salt `= 250xx0.1=25` Meq.of base `=5xx0.1=0.5` `:. ["Salt"]= (25)/(255)` `:. pOH= -log 1.8xx10^(-5)+log((25//255)/(0.5//255))` pOH= 6.4437` `:. pOH=14-pOH=7.5563` (c ) `pH= -log K_(b)+log ((["Salt"])/(["Acid"]))` `= -llog 3.6xx10^(-4)+log ((0.35//500)/(0.25//500))` `pH= 3.5898`

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Calculate the pH of a given mixtures. (a) `(4g CH_(3)COOH+6g CH_(3)COONa)` in 100 mL of mixture, (`K_(a)` for `CH_(3)COOH=1.8xx10^(-5))` (b) 5 mL of `0.1MBOH+250` mL of `0.1 MBCI`, (`K_(a)` for `MOH=1.8xx10^(-5))` (c ) (`0.25` mole of `CH_(3)COOH+0.35` mole of `CH_(3COOH=3.6xx10^(-4))`

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