A weak acid, HA, has a `K_(a)` of `1.00xx10^(-5)`. If `0.100` mol of the acid is dissolved in 1 L of water, the percentage of the acid dissociated at equilibrium is the closed toA. `99.0%`B. `1.00%`C. `99.9%`D. `0.100%`

A weak acid, HA, has a `K_(a)` of `1.00xx10^(-5)`. If `0.100` mol of t

1.	A weak acid, HA, has a `K_(a)` of `1.00xx10^(-5)`. If `0.100` mol of the acid is dissolved in 1 L of water, the percentage of the acid dissociated at equilibrium is the closed toA. `99.0%`B. `1.00%`C. `99.9%`D. `0.100%`
Answer» Correct Answer - B `HA hArr H^(+)+A^(-)` At equilibrium `[H^(+)=A^(-)]` `K_(a)=([H^(+)][A^(-)])/([HA])=([H^(+)]^(2))/([HA])` `[H^(+)]=sqrt(K_(a)[HA])=sqrt(1xx10^(-5)xx0.1)` `=sqrt(1xx10^(-6))=1xx10^(-3)` `alpha = ("Actual ionisation")/("Molar concentration")=(10^(-3))/(0.1)=10^(-2)` % of acid dissociated `=10^(-2)xx1.00=1%=100%`

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A weak acid, HA, has a `K_(a)` of `1.00xx10^(-5)`. If `0.100` mol of the acid is dissolved in 1 L of water, the percentage of the acid dissociated at equilibrium is the closed toA. `99.0%`B. `1.00%`C. `99.9%`D. `0.100%`

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