An indicator has `pK_(In)=5.3`. In a certain titration, this indicator is found to be `80%` ionized in its acid form. Thus, `pH` of the solution isA. `4.7`B. `5.3`C. `5.9`D. `6.2`

An indicator has `pK_(In)=5.3`. In a certain titration, this indicator

1.	An indicator has `pK_(In)=5.3`. In a certain titration, this indicator is found to be `80%` ionized in its acid form. Thus, `pH` of the solution isA. `4.7`B. `5.3`C. `5.9`D. `6.2`
Answer» Correct Answer - A `underset(Acid form)(HIn)hArrunderset(Basic form)(H^(+))+In^(-)` Thus, acid form `[HIn] =0.80 M` `[In^(-)]=0.20 M` `pH=pK_(In)+log``([In^(-)])/([HIn])=5.3+log``(0.2)/(0.8)` `=5.3+log(1)/(4)=5.3-0.60=4.7`

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An indicator has `pK_(In)=5.3`. In a certain titration, this indicator is found to be `80%` ionized in its acid form. Thus, `pH` of the solution isA. `4.7`B. `5.3`C. `5.9`D. `6.2`

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