Calculate `pH` of `0.002 N NH_(4)OH` having `2%` dissociationA. `7.6`B. `8.6`C. `9.6`D. `10.6`

Calculate `pH` of `0.002 N NH_(4)OH` having `2%` dissociationA. `7.6`B

1.	Calculate `pH` of `0.002 N NH_(4)OH` having `2%` dissociationA. `7.6`B. `8.6`C. `9.6`D. `10.6`
Answer» Correct Answer - C `NH_(4)OH` is a weak base and partially dissociated `{:(,NH_(4)OH,hArr,NH_(4)^(+),+,OH^(-)),("Concentration",1,,0,,0),("before dissociation",,,,,),("Concentration",1-alpha,,alpha,,alpha),("after dissociation",,,,,):}` `:. [OH^(-)]=C alpha=2xx10^(-3)xx(2)/(100)=4xx10^(-5)M` `pOH= -log[OH^(-)]` `= -log4xx10-5=4.4` `pH=14-4.4=9.6`

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Calculate `pH` of `0.002 N NH_(4)OH` having `2%` dissociationA. `7.6`B. `8.6`C. `9.6`D. `10.6`

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