Ionisation constant of CH(3)COOH is 1.7x...

Ionisation constant of `CH_(3)COOH` is `1.7xx10^(-5)` and concentration of `H^(+)ions` is `3.4xx10^(-4)`. Then, find out initial concentration of `CH_(3)COOH` molecules.

A

`3.4xx10^(-4)`

B

`3.4xx10^(-3)`

C

`6.8xx10^(-4)`

D

`6.8xx10^(-3)`

Text Solution

Verified by Experts

The correct Answer is:

D

`CH_(3)COOH hArr CH_(4)COO^(-)+H^(+)`
`K_(a)=([CH_(3)COO^(-)][H^(+)])/([CH_(3)COOH])`
Given that `[CH_(3)COO^(-)]=[H^(+)]=3.4xx10^(-4)M K_(a)` for `CH_(3)COOH=1.7xx10^(-5) CH_(3)COOH` is weak acid, so in it `[CH_(3)COOH]` is equal to initial conentration. Hence.
`1.7xx10^(-5)=((3.4xx10^(-4))(3.4xx10^(-4)))/([CH_(3)COOH])`
`[CH_(3)COOH]=(3.4xx10^(-4)xx3.4xx10^(-4))/(1.7xx10^(-5))`
`=6.8xx10^(-3)M`

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